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. 2021 May 14;81(5):420. doi: 10.1140/epjc/s10052-021-09169-7

On the scalar πK form factor beyond the elastic region

L von Detten 1, F Noël 1,2,, C Hanhart 1, M Hoferichter 2, B Kubis 3
PMCID: PMC8550431  PMID: 34720718

Abstract

Pion–kaon (πK) pairs occur frequently as final states in heavy-particle decays. A consistent treatment of πK scattering and production amplitudes over a wide energy range is therefore mandatory for multiple applications: in Standard Model tests; to describe crossed channels in the quest for exotic hadronic states; and for an improved spectroscopy of excited kaon resonances. In the elastic region, the phase shifts of πK scattering in a given partial wave are related to the phases of the respective πK form factors by Watson’s theorem. Going beyond that, we here construct a representation of the scalar πK form factor that includes inelastic effects via resonance exchange, while fulfilling all constraints from πK scattering and maintaining the correct analytic structure. As a first application, we consider the decay τKSπντ, in particular, we study to which extent the S-wave K0(1430) and the P-wave K(1410) resonances can be differentiated and provide an improved estimate of the CP asymmetry produced by a tensor operator. Finally, we extract the pole parameters of the K0(1430) and K0(1950) resonances via Padé approximants, sK0(1430)=[1408(48)-i180(48)]MeV and sK0(1950)=[1863(12)-i136(20)]MeV, as well as the pole residues. A generalization of the method also allows us to formally define a branching fraction for τK0(1430)ντ in terms of the corresponding residue, leading to the upper limit BR(τK0(1430)ντ)<1.6×10-4.

Introduction

At low energies, the πK S-wave of isospin 1/2 is characterized by the interplay of low-energy theorems induced by the chiral structure of QCD [1, 2] and a relatively close-by pole located deep in the complex plane called the κ or K(700) [38]. The properties of the κ cannot be described by a simple Breit–Wigner (BW) model, but require the proper consideration of the analytic structure, most conveniently implemented in the framework of dispersion relations. Given that the πK S-wave effectively stays elastic well beyond 1GeV, with the first excited resonance, the K0(1430), still predominantly coupling to the πK channel, the κ properties are thus largely encoded in the S-wave phase shift, although the full dispersive analysis involves other partial waves as well as the crossed reaction ππK¯K [3, 7, 9]. While πK scattering thus serves as the simplest probe of the strangeness sector of the QCD spectrum, its impact extends far beyond, with more complicated processes such as γKπK [10], K4 decays [11], D-meson decays such as DππK [12, 13], or even reactions involving nucleons [14, 15] depending on πK amplitudes as input.

Moreover, the same principles of unitarity and analyticity upon which modern analyses of πK scattering are based imply a relation to the corresponding form factors. In the crossed reaction ππK¯K this connection determines scalar meson [16] and nucleon [17] form factors via a coupled-channel T-matrix, while the πK form factors of a given partial wave are directly related to the respective πK scattering amplitudes via Watson’s theorem [18], which states that the phases coincide in the elastic region. The S- and P-wave πK form factors are relevant for analyses of K3 [1921] and τKSπντ decays [2226], where the τ spectrum probes the region of parameter space in which an elastic approximation no longer applies. Extensions of the simple Omnès representation [27] are thus required. For the P-wave, inelastic effects are typically included in resonance chiral theory (RChT) [28] via the K(1410), providing an extended parameterization of the phase shift to be used in the Omnès factor or by feeding the corresponding amplitudes into a unitarization scheme such as the N/D method [29, 30]. The latter is hard to handle, however, since it is difficult to prevent its high-order polynomials from generating unphysical poles [31]. Moreover, for the S-wave, the effect of inelasticities in τKSπντ is usually neglected apart from a generous variation of the unknown phase of the form factor, leading to an Omnès representation that, besides constraints from the Callan–Treiman low-energy theorem [3236], essentially involves a subtracted version of the elastic solution.

Extending the applicability range of form factor parameterizations by an improved treatment of inelastic effects has become increasingly pressing in recent years. First, the size of the CP asymmetry in τKSπντ generated by a tensor operator was shown to be solely determined by inelastic effects [37], due to a cancellation of the elastic contribution that follows from Watson’s theorem. In addition, control over inelastic effects would be required to describe DπKν [38] and future measurements of BπKν or BπK, or as subamplitudes for the calculation of heavy-meson Dalitz plots, which are often described in a simplified manner in terms of πK form factors [3943]. For the latter application, the amplitudes are described by the same form factors if the impact of hadronic spectator particles is neglected, and in this case variants of the scalar form factor have been constructed that include inelastic effects by a coupled-channel treatment of πK and ηK [41].

Also in the hunt for exotic hadrons, controlled πK amplitudes are very valuable. For example, at Belle and LHCb the Zc(4430) was discovered in the reaction BψπK in the ψπ subsystem [44, 45]. The signal became visible through the observation that the πK amplitudes in the crossed channel were not able to describe the ψπ distribution. Since in such crossed amplitudes the individual partial waves interfere with each other, a high control especially of their phases is mandatory. Finally, to get access to the spectrum of kaon resonances and in particular their pole parameters, employing amplitudes consistent with analyticity and unitarity is necessary.

In this paper, we propose a parameterization for the S-wave πK form factor that has the proper low-energy behavior and at the same time allows for an inclusion of resonances and inelasticities at higher energies. We follow the strategy from Ref. [46] (originally proposed in Ref. [47] for the pion vector form factor), describing inelastic effects via resonances akin to the isobar model, but in such a way that at low energies the elastic Omnès parameterization is reproduced and the correct analytic structure remains preserved. Accordingly, we assume that the inelastic contributions can be understood as proceeding via resonances, as supported by the phenomenological success of the isobar model. The analogous representation derived in Ref. [46] then allowed for an analysis of the complete kinematic range of the BsJ/ψππ and BsJ/ψK¯K spectra, extending the previous high-quality description in a restricted range of ππ and K¯K invariant masses [48]. In particular, the properties of the higher S-wave resonances could be extracted.

In this work, we first establish a similar formalism for the πK system, see Sect. 2, with the input from πK scattering data discussed in Sects. 3 and 4 . As applications, we consider the τKSπντ spectrum in Sect. 5, including an improved prediction for the CP asymmetry produced by a tensor operator, and extract the resonance parameters of K0(1430) and K0(1950) in Sect. 6, where the residue describing the coupling to the weak current allows us to formally define the branching fraction for τK0(1430)ντ. Our conclusions are given in Sect. 7.

Formalism

As mentioned above, we aim at a parameterization of the πK isospin-1/2 S-wave scattering amplitude that at low energies matches smoothly onto elastic πK scattering given by the input phase shift δ0, and at the same time allows for the inclusion of resonances and inelastic channels, most importantly the ηK channel, at higher energies – the ηK channel turns out to largely decouple. Thus, in the energy range we study, two channels are sufficient and we therefore present the formalism in a two-channel formulation, although an extension to more channels is straightforward. To derive an expression for the T-matrix that fulfills the mentioned criteria, we start from the Bethe–Salpeter equation, which in matrix form in channel space reads

Tif=Vif+VimGmmTmf, 1

where VifR denotes the interaction potential between the initial channel i and final channel f and Gmm denotes the loop operator, which provides the free propagation of the intermediate particles of channel m. For two-particle states, its discontinuity is given by discGmm=2iρm, where ρm denotes the two-body phase space in channel m,

ρm(s)=λ12s,(mi(m))2,(mj(m))216πs, 2

where λ is the Källén function

λ(a,b,c)=a2+b2+c2-2(ab+ac+bc). 3

To proceed we follow the general concepts of the so-called two-potential formalism [49], which calls for splitting the scattering potential V into two pieces,

V=V0+VR. 4

This allows for a corresponding splitting of the T-matrix

T=T0+TR, 5

where T0 fulfills the Bethe–Salpeter equation that has V0 as input, T0=V0+V0GT0. As will be demonstrated below, the explicit form of V0 is never needed: all quantities necessary to express the full scattering T-matrix and the scalar form factor can be calculated from the scattering phase shift δ0 directly. T0 fixes the low-energy behavior of the model, while TR incorporates the high-energy resonant behavior via VR. In the case of πK scattering studied here, we assume T0 to be purely elastic. The additional channel couples through the resonance exchange in TR only. We may therefore write

T0=1ρ1sinδ0eiδ0000. 6

Clearly, the assumption that all higher channels couple via resonances introduces some model dependence, which, however, is backed by phenomenology [5052]. We furthermore define the vertex function Ω=1+T0G. Its discontinuity is given by

discΩif=2i(T0)imρmΩmf, 7

which matches that of an Omnès function [27] calculated from T0. Thus we can express Ω via a dispersion integral over the input phase δ0,

Ω=Ω11001,Ω11=expsπsthdzδ0(z)z(z-s). 8

Note that in order to render the integral well defined, the phase δ0 needs to be continued up to infinite energies. How this is done in practice is discussed below. Plugging Eqs. (4) and (5) into Eq. (1), one finds after some algebra the defining equation for tR,

tR=VR+VRΣtR, 9

which is related to TR via TR=ΩtRΩT. The so-called dressed loop operator or self energy Σ=GΩ incorporates the effects contained in T0 into the propagation of the two-meson states as demanded by unitarity. It can be expressed as a once-subtracted dispersion integral

Σij(s)=s2πisthdzdiscΣij(z)z(z-s), 10

with its discontinuity given by

discΣif=ΩimdiscGmmΩmf. 11

The subtraction constant is reabsorbed into the potential VR. Such manipulations are justified as the formalism has not made any assumptions about the form of VR besides it being real and having poles at the bare resonance masses M~(r). The simplest parameterization of this kind is

V¯R(s)ij=-rgi(r)gj(r)s-M~(r)2, 12

where the gi(r) denote the bare couplings of the resonance r to channel i. The bare parameters introduced here should not be confused with the physical parameters introduced in Sect. 6. To reduce the impact of VR at lower energies, the potential is subtracted at some properly chosen point s0, resulting in

VR(s)ij=V¯R(s)ij-V¯R(s0)ij=rgi(r)s-s0s-M~(r)2s0-M~(r)2gj(r). 13

Solving Eq. (9) for tR, the full scattering T-matrix is given by

T=T0+TR=T0+Ω1-VRΣ-1VRΩT, 14

with VR as defined in Eq. (13).

We can further parameterize the πK production mechanism by adapting the P-vector formalism of Ref. [53] (see also the resonance review of Ref. [54]). The scalar form factor fs(s) is then expressed as

(fs)i=Mi+TimGmmMm, 15

where M is some properly chosen source term. Under the assumption that M does not contain any left-hand cuts, plugging Eq. (14) into Eq. (15) yields

fs(s)=Ω(s)1-VR(s)Σ(s)-1M(s), 16

where M is now a reparameterized source term, which can be written as

Mi=k=0kmaxci(k)sk-rgi(r)s-s0s-M~(r)2s0-M~(r)2α(r). 17

The coefficients ci(k) and the resonance couplings α(r) depend on the source. A method to generalize the formalism to also allow for left-hand cuts is provided by the Khuri–Treiman formalism [55]. For a recent calculation of this kind where the amplitudes of Ref. [46] were employed, see Ref. [56].

Scattering data and input phase

Most of the data on πK scattering were obtained in the 1970s and 1980s.1 Various experiments [5862] obtained data for the phase shift of the isospin-3/2 wave in the elastic regime from kaon–nucleon reactions using protons, neutrons, and deuterons with K±π± in the final states. The isospin-1/2 wave, however, can only be measured in combination with the isospin-3/2 wave, so that we mainly focus on the combination of both, which in terms of the T-matrices is expressed by

T^if=ρiT12+T32/2if. 18

Studies of the reaction K-pK-π+n performed in Ref. [63] resulted in data for argument and modulus of this isospin combination in the πK channel up to about 2.5GeV, which we use to fix the free parameters of the resonance potential.

For the low-energy phase shift δ0 we use the results obtained in Ref. [64]. Using forward dispersion relations to constrain the parameters, in that work the authors found a parameterization of the isospin-1/2 and -3/2 waves up to 1.6 and 1.8GeV, respectively. In the elastic regime it is based on a conformal expansion of the phase shifts, while inelastic background and resonance contributions are modeled by products of functions consistent with unitarity. For the input phase δ0 we reduce the parameterization to be purely elastic. In addition, we remove the resonance contributions from the parameterization of the phase above the ηK threshold, as higher resonances will be included via the resonance potential VR. Thus, we use the parameterization provided in Ref. [64] as the input phase δ0 below the ηK threshold, and set the parameters G1 and G2 to zero in the resonance terms Sr1 and Sr2 of Eq. (16) in Ref. [64] above. This procedure makes a small cusp at the ηK threshold more visible (cf. Fig. 1). Since T0 needs to be known in the full energy range and δ0 formally even up to infinite energies to allow one to evaluate the Omnès integral of Eq. (8), the phases needs to be continued smoothly up to high energies. We force them to approach integer multiples of π, employing

δ0(s)=L-(L-δ0(sm))exp-(s-sm)δ0(sm)L-δ0(sm) 19

for s>sm. Here L denotes the asymptotic limit of the phase shift and δ0(s) its derivative dδ0(s)/ds. As the isospin-3/2 wave is purely elastic over a wide energy range and contains no resonances, which would be exotic due to their quantum numbers, the phase shift can simply be guided towards 0 as TR32=0.

Fig. 1.

Fig. 1

Isospin-1/2 and -3/2 phase shifts including their high-energy extension. The latter is compared to the data from Bakker et al. [58], Cho et al. [59], Estabrooks et al. [60], Jongejans et al. [61], and Linglin et al. [62]

As shown in Fig. 1, the available data for the isospin-3/2 wave of Refs. [5862] are not mutually consistent, but the parameterization of Ref. [64] describes them quite decently. As data are only available up to 1.72GeV, we choose sm=1.75GeV as a matching point for the isospin-3/2 wave. The isospin-1/2 wave on the other hand is guided towards π above sm=1.52GeV as only the κ resonance below the ηK threshold remains to be described by the input phase. The final results do not depend on the exact value of the matching energy sm, as long as it is chosen in this range. The resulting input phase shifts for the isospin-1/2 and -3/2 components are shown in Fig. 1 as well.

Fit to scattering data

We aim at a description of the scattering data from the πK threshold up to 2.5GeV. In this energy range the particle data group (PDG) reports, besides the κ, two more resonances in the S-wave, K0(1430) and K0(1950) [54]. We thus allow for two resonances in the resonance potential. Using a two-channel setup, incorporating the πK and ηK channels, the model has a total of 6 free real parameters in VR: 4 coupling constants and 2 masses. Following Ref. [3], we assume that the ηK channel effectively decouples from πK. This assumption is confirmed by the analysis of Ref. [64], which finds the πK system elastic up to 1.6GeV. Moreover, we checked that an inclusion of the ηK channel yields no significant difference of our results: the largest relative difference between a fit using a two-channel and three-channel model is about 0.5% for the argument and 0.9% for the modulus. Furthermore, the fit finds values consistent with zero for the couplings of the resonances to the ηK channel.

Figure 2 shows the result of the combined fit of argument and modulus to the data set of Ref. [63], with the corresponding parameters given in Table 1. The model is able to reproduce the data well up to about 2.3GeV. The subtraction point of the potential s0 is fixed to the ηK threshold with s0=(MK+Mη)2. This choice is supported by fits where s0 was treated as a free parameter. Using a subtraction at s0=0 as in the ππ analyses of Refs. [46, 47] turns out to be insufficient to dampen the low-energy contributions of the resonance potential, as the πK threshold lies much higher than the ππ threshold. With our choice for s0, however, the full result matches the low-energy input closely below the ηK threshold, as it should. The fit demonstrates that the coupling of the K0(1430) to the ηK channel is small and within errors consistent with zero, while the K0(1950) couples strongly to ηK.

Fig. 2.

Fig. 2

Results for the combined fit of argument and absolute value of T^, defined in Eq. (18), with 1σ uncertainty band to the corresponding data of Aston et al. [63]. We furthermore show the results of Peláez and Rodas (2016) [64] for comparison, which by the authors are quoted to be valid up to the dash-dotted line at 1.6GeV, and the newer results of Peláez and Rodas (2020) [7]. We moreover show the low-energy amplitude (T^0)if=ρi(T012+T032/2)if and the resonance part of the model (T^R)if=ρi(TR12)if independently

Table 1.

Parameters of the combined fit of argument and absolute value of T^, defined in Eq. (18), to the corresponding data of Ref. [63] as shown in Fig. 2

Parameter Value
g1(1)(GeV) 2.898(29)
g2(1)(GeV) -0.25(35)
g1(2)(GeV) 2.14(17)
g2(2)(GeV) 7.70(64)
M~(1)(GeV) 1.5708(33)
M~(2)(GeV) 2.133(36)
#data points 112
#variables 6
χ2 370.8
χ2/#d.o.f. 3.50

The resulting reduced χ2 of about 3.5 seems rather unsatisfactory. However, comparing the data of Ref. [63] to the results of other groups such as Ref. [60] reveals that there are large discrepancies between the different data sets. Especially in the low-energy regime up to the opening of the ηK threshold, a lot of data points differ by multiple standard deviations between the two sets. A combined fit of argument and modulus to both data sets more than doubles the reduced χ2, strongly indicating that some systematic uncertainties are underestimated – see also the related discussion in Ref. [64]. Hence, considering the modest quality of the data the fit performs quite decently. One could also try to extend the model to higher energies by adding an additional K0 resonance. However, this would require reliable data up to even higher energies, while we already cover the energy ranges of processes of interest such as τKSπντ and BJ/ψπK.

Figure 3 shows the elasticity η of the isospin-1/2 amplitude that results from the fit, compared to that of the analysis of Ref. [64]. One sees that our model is purely elastic up to 1.5GeV. At higher energies, η starts to decrease in a way consistent with Ref. [64], although some deviations become visible.

Fig. 3.

Fig. 3

Elasticities η of the πK isospin-12 wave extracted from Peláez and Rodas (2016) [64], Peláez and Rodas (2020) [7], and our model. The dashed blue line denotes the end of the range of validity of the analysis from Ref. [64] at 1.6GeV

Application to τ decays

As an application of the parameterization of the scalar form factor constructed based on the scattering input fixed in the preceding sections, we now focus on the reaction τ-KSπ-ντ, to improve the description of the spectrum measured by the Belle collaboration [65] in the energy region where inelastic effects in the scalar form factor become relevant. In particular, we will study to which extent the excited S- and P-wave resonances K0(1430) and K(1410) can be separated and provide an improved estimate of the CP asymmetry produced by a tensor operator.

Decay rate and form factor parameterization

The differential decay rate can be parameterized by

dΓds=cΓs1-smτ221+2smτ2qπK×qπK2|f¯+|2+3ΔπK24s1+2smτ2|f¯0|2, 20

where ΔπK=MK2-Mπ2, the prefactor is given by

cΓ=GF2mτ396π3SEWτ(|Vus|f+(0))2(1+δEMKτ)2, 21

with the constants listed in Table 2, and

qπK=λ1/2s,Mπ2,MK22s 22

is the center-of-mass momentum of the πK pair.

Table 2.

Input quantities entering Eq. (21)

Quantity Value References
GF(10-5GeV-2) 1.1663787(6) [66]
SEWτ 1.0194 [6769]
|Vus|f+(0) 0.2165(4) [54, 70]
δEMKτ -0.15(20)% [26]

The actually measured events N in an experimental setting in a bin at s then emerge from the decay rate as

N=cNdΓds:=λcΓdΓds, 23

with cN some constant depending on the experimental setup. Here we assume the experimental binning to be chosen in such a way that the differential decay rate can be considered constant with respect to its uncertainty within one bin. For simplicity we combine all prefactors in the fits and define λ=cN×cΓ, which remains a free parameter of the fit.

In the parameterization (20) the form factors are defined by the matrix elements

K¯0(pK)π-(pπ)|s¯γμu|0=(pK-pπ)μf+(s)+(pK+pπ)μf-(s),K¯0(pK)π-(pπ)|s¯u|0=ΔπKms-muf0(s), 24

where

f-(s)=ΔπKs(f0(s)-f+(s)). 25

The Ward identity ensures the common normalization f+(0)=f0(0) of vector and scalar form factors f+(s) and f0(s), which has been removed in the reduced form

f¯+(s)=f+(s)f+(0),f¯0(s)=f0(s)f+(0). 26

With πK S-wave scattering fixed as discussed in the previous section, the scalar form factor can be calculated via Eq. (16) as f¯0(s)=(fs)1. In principle, the vector form factor could also be described in a similar formalism, but for the present application we will employ a conventional parameterization from RChT [2226], whose phase serves as input for an Omnès representation with three subtractions

f¯+(s)=exp[λsMπ2+12λ-λ2sMπ22+s3πsthdzz3δ1(z)(z-s)]. 27

Here, one subtraction constant was fixed by f¯+(0)=1, and the other two are related to the slope parameters of the form factor, which can be determined independently from K3 decays. We choose them to be fixed by the central values of the results from Ref. [26], λ=25.621(405)×10-3 and λ=1.2221(183)×10-3. As these parameters were not readjusted to the τ decay studied here, they impose an additional constraint on the small-s behavior of the form factors, to which the τ spectrum is less sensitive. We have checked that the sum rules of Ref. [26] for λ, λ, which depend on the P-wave fit parameters, remain well fulfilled in the fit, but otherwise will not propagate the corresponding uncertainties further, given that our focus lies on the inelastic part of the τ spectrum.

The phase δ1 in Eq. (27) is parameterized as arg(f^+) with f^+ a RChT model for the form factor in terms of two resonances K(892) and K(1410) and a mixing parameter β, given as

f^+(s)=M~K(892)2-κK(892)H~πK(0)+βsDM~K(892),Γ~K(892)-βsDM~K(1410),Γ~K(1410), 28

with

DM~R,Γ~R=M~R2-s-κRH~πK(s)-iM~RΓR(s) 29

and

ΓR(s)=Γ~RsM~R2ρ1(s)ρ1(M~R2)3,κR=164π2Γ~RM~R3FKFπρ1(M~R2)3. 30

Further,

H~πK(s)=H(s)-2L9rs3FKFπ=sMr(s,μ)-L(s)FKFπ 31

is the πK loop function in chiral perturbation theory (ChPT) with H(s) as defined in Ref. [34], where the chiral scale μ was fixed to μ=MK(892)0=895.55MeV [54]. Explicit expressions for Mr(s,μ) and L(s) can be found in Ref. [71] as well as for H~πK(0)=HπK(0) in Ref. [34]. Note that the mass M~R and width Γ~R parameters are bare parameters and do not correspond to physical masses and widths. The parameters for K(892) and K(1410) are initially set to the results of Ref. [26], but are then allowed to vary within 2σ for M~K(892) and Γ~K(892), 5σ for M~K(1410), 1.5σ for Γ~K(1410), and 10σ for β, although β<0 is still enforced. These parameter ranges were chosen in such a way that the shape of the generated πK P-wave scattering phase shift remains phenomenologically viable.

Since we employ a two-channel formalism for the S-wave, the parameters to be adjusted to the τ decay data are the normalization constants c1(0) and c2(0), potentially to be supplemented by higher terms in the polynomial for the source term, as well as source–resonance couplings α(1) and α(2) to the two resonances. Due to the normalization f¯0(0)=1, given by the Ward identity, f+(0)=f0(0), the constant term c1(0) is implicitly fixed by f¯0(0)=(fs)1(0)=1. Furthermore the normalization of the ηK scalar form factor is fixed from matching to the corresponding expression from U(3) ChPT at s=0, which, with the standard single ηη mixing angle, is larger than the πK scalar form factor by a factor of 3 at leading order, resulting in (fs)2(0)=M2(0)=3, which implicitly fixes c2(0). Higher-order corrections tend to reduce this result [72], however, as we will find, the sensitivity of the data to the ηK channel is limited, so that the leading-order estimate is sufficient for our purposes.

Higher polynomials in the source term have the potential to improve the description of the scalar form factor in the τ decay region, at the cost of changing its high-energy behavior. We therefore investigate the influence of a linear term in s proportional to c1(1) for the πK channel. For the ηK channel on the other hand, this did not prove necessary as already the leading-order constant is poorly determined in the fit. Furthermore, our phase description of the S-wave does not only include the K0(1430) resonance, which is perfectly within the decay region, but also the K0(1950) resonance, which lies significantly above the τ mass. Hence it is to be expected that the corresponding source-term coupling α(2) is difficult to constrain via the τ decay data. Accordingly, we will consider fit variants in which the K0(1950) source-term coupling is set to zero for this decay. Note that this does not remove the K0(1950) resonance completely from our model, as the phase still contains the full information about all resonances. This is a distinct feature of this construction, reflecting the built-in unitarity constraints.

Finally, we introduce a further restriction into our fitting routine: the Callan–Treiman low-energy theorem [3236] constrains the scalar πK form factor below threshold at s=ΔπK to

f¯0(ΔπK)=FKFπ+ΔCT, 32

where ΔCT is a very small correction. To implement this condition we introduce an additional term to the χ2 sum weighted by ΔCT, given as

χ2χ2+f¯0(ΔπK)-(FK/Fπ)-ΔCTΔCT2. 33

We take ΔCT=-5.6×10-3 from Ref. [35], which includes isospin breaking and corrections up to next-to-next-to-leading order. For the ratio of the decay constants we use FK/Fπ1.195 [73].

Fit results

We consider the four fit variants presented in Table 3. As indicated, we distinguish between fits with and without the K0(1950) source-term coupling α(2) as well as with and without a linear term in s proportional to c1(1) in the source term of the scalar form factor. The parameters of the scalar resonances are kept fixed to their values determined in the fit to the scattering data. As all fits are in agreement with each other and of similar quality, Fig. 4 shows the results only of Fit 3, together with the efficiency-corrected and background-subtracted events as measured by Belle [65] as well as the separate contributions from the vector and scalar form factor, respectively. For all fits we excluded the data points 5, 6, and 7, following Refs. [23, 24, 26, 74]. The inclusion of these points would increase the χ2/#d.o.f. by 0.15–0.2 without any significant shift in the fit parameters, suggesting a conflict with the general principles on which our fit function is based. Since the experimental uncertainties included in the fit (and shown in Fig. 4) are only statistical, this is likely due to an unaccounted-for systematic effect. The relative differences between the various fits as well as the comparison to two of the original Belle BW parameterizations [65] are displayed in Fig. 5, which are normalized to the result of Fit 3. “Belle 1” corresponds to a BW description including K0(700), K(892), and K(1410), and “Belle 2” contains K0(700), K(892), and K0(1430). With their BW framework, Belle was only able to describe the structure around 1.4GeV either by the vector K(1410) or by the scalar K0(1430) resonance, but not by both at the same time.

Table 3.

Parameters of the fits of theoretical events N, defined in Eq. (23), to efficiency-corrected and background-reduced events for τ-KSπ-ντ [65] including the additional constraint of Eq. (33) with different combinations of fixed α(2) and c1(1) parameters. As the outcome of all fits is quite close, only Fit 3 is shown exemplarily in Fig. 4, while we display the comparison between the fits in Fig. 5

Parameter Fit 1 Fit 2 Fit 3 Fit 4
λ 0.753(11) 0.7440(94) 0.7617(87) 0.746(11)
α(1)(GeV) -0.35(26) -0.28(21) 0.035(40) -0.42(19)
α(2)(GeV) 1.9(1.3) -4.3(3.9) 0 (fixed) 0 (fixed)
c1(1)(GeV-2) 0 (fixed) -0.65(34) 0 (fixed) -0.25(11)
M~K(892)(MeV) 943.71(57) 943.26(53) 944.04(52) 943.40(54)
Γ~K(892)(MeV) 67.15(88) 66.46(82) 67.61(80) 66.69(82)
M~K(1410)(MeV) 1355(34) 1381(39) 1354(15) 1357(24)
Γ~K(1410)(MeV) 205(100) 205(100) 229(22) 176(35)
β -0.032(16) -0.029(12) -0.0418(48) -0.0251(75)
#data points 97+1 97+1 97+1 97+1
#variables 8 9 7 8
χ2 93.1 87.4 97.7 89.4
χ2/#d.o.f. 1.03 0.98 1.07 0.99

Fig. 4.

Fig. 4

Example result Fit 3 for the fit of theoretical events N, defined in Eq. (23), to efficiency-corrected and background-reduced events for τ-KSπ-ντ of Ref. [65] including the additional constraint of Eq. (33). In addition, we show the scalar form factor (SFF) and vector form factor (VFF) components separately

Fig. 5.

Fig. 5

Comparison of the different fit results presented in Table 3 as well as two BW parameterizations “Belle 1” and “Belle 2” [65] – which include K0(700), K(892), and K(1410), or K0(700), K(892), and K0(1430), respectively – all normalized by Fit 3

The τ decay spectrum is highly dominated by the vector form factor and the K(892) resonance, making other components of the decay rate difficult to separate. However, it is known that a description in terms of the K(892) resonance alone is not sufficient, as also found by Belle [65]. In our analysis, we find meaningful fits of the decay spectrum, despite the strong overlap between the K0(1430) and K(1410) resonances. With information on the K0(1430) resonance entering via the πK S-wave phase shift, the fit to the spectrum allows us to determine the mass parameter of the K(1410) at the level of 30MeV, so that the combination of scattering data and the τ spectrum permits some discrimination between the S- and P-wave resonances even without additional differential information (see below). As expected, the influence of the K0(1950) resonance in the decay region is very small and the fit results with and without K0(1950) source-term coupling are nearly indistinguishable in terms of the decay spectrum, as reflected by the large uncertainties on α(2) in Fits 1 and 2. The linear term in the source term c1(1), on the other hand, improves the fit more substantially and does not come out consistent with zero. However, as the fit quality is already sufficient without it, we cannot claim conclusive evidence for the necessity of a linear term either. At the current level of precision, we thus conclude that the four fit variants are essentially equivalent.

Examining the underlying scalar and vector form factors, as shown in Figs. 6 and 7 , respectively, the advantages of our parameterization in comparison to the BW approach become evident. By construction, the phase of the scalar form factor coincides with the scattering phase up to the ηK threshold. As only the absolute value of the form factor enters into Eq. (20), the measurement cannot fix its phase directly, but it is determined implicitly in accord with the unitarity condition, a constraint clearly violated by the BW parameterizations, see Fig. 6. Furthermore, contrary to the BW model, our representation fulfills the Callan–Treiman low-energy theorem up to at least 0.5%, which corresponds to less than 10% of ΔCT.

Fig. 6.

Fig. 6

Scalar form factor f¯0 (top: modulus, bottom: phase) with the parameters of the fit results of Table 3

Fig. 7.

Fig. 7

Vector form factor f¯+ (top: modulus, bottom: phase) with the parameters of the fit results of Table 3

The vector form factor comes out close to the results of Ref. [26], from where its parameterization originates, with small differences in the inelastic region due to the use of our improved parameterization of the scalar form factor. The constraints on λ and λ using the K3 input from Ref. [26] are still fulfilled up to at least 0.5%. The result is also relatively close to the BW parameterization, which works well as long as the K(892) resonance dominates. However, unitarity violation still occurs in the threshold region due to unphysical imaginary parts, and the phase differs considerably as soon as the K(1410) resonance becomes relevant.

Comparing the four fits, differences emerge starting around the ηK threshold. The phase of Fit 3 largely follows the elastic input phase, in Fit 2 still a sharp drop-off occurs, while in Fits 1 and 4 no such effect is visible. This behavior is mirrored in the modulus, almost reaching zero in Fit 3 and a pronounced minimum in Fit 2. Further, the results of Fits 1 and 3, which do not involve a slope parameter c1(1), tend to have a smaller scalar form factor in the τ decay region and a slightly lower bare mass for the K(1410) in the vector form factor. On the other hand, Fits 2 and 4, including a slope c1(1), have more freedom to increase the scalar form factor at lower energies, which results in a slightly higher K(1410) bare mass and a smaller value of λ. Asymptotically, the scalar form factors without slope fall off like 1/s for high energies, as expected from perturbative QCD [75, 76], while those with a slope approach a constant; again, the τ spectrum is not sufficient to differentiate. In fact, the scalar form factors beyond the ηK threshold are not well constrained at all, as that region is already strongly suppressed by phase space in the decay spectrum and the data points have large uncertainties. This is the reason why Fits 3 and 4 are much better behaved when extrapolated beyond the energy region probed in the τ decay, since without setting α(2)=0 the fit function can extend to large values before the asymptotic behavior sets in. Finally, one finds that all scalar form factors still generate resonant structures above the τ decay region, even if the source-term couplings are set to zero: as we already remarked above, unitarity demands that the underlying phase still contain information about all resonances.

Since the scalar resonance K0(1430) and the vector resonance K(1410) occupy the same energy region, ultimately additional data beyond the spectrum are required to better determine their parameters. One such observable that separates vector and scalar components is the forward–backward asymmetry [77, 78]

AFB(s)=01dzdΓdz(z)-dΓdz(-z)01dzdΓdz(z)+dΓdz(-z)=-2Re(f0f+)ΔπKqπKs|f0|2ΔπK2+43|f+|2qπK22s2mτ2+s, 34

where z denotes the cosine of the πK helicity angle. The quantity AFB(s) can potentially be measured at Belle II [78]. We show the predictions corresponding to the four fits in Fig. 8. As expected, the different fits are quite distinct above the ηK threshold due to the different phase motion, allowing one to distinguish among them once data on AFB(s) become available.

Fig. 8.

Fig. 8

Forward–backward asymmetry as defined in Eq. (34) for the four fit results as given in Table 3

Finally, by integrating over Eq. (20) and normalizing with respect to the total τ decay width Γτ=2.267(4)×10-3eV [54], we can calculate the branching ratio of τKSπντ for the different fits:

BR(τKSπντ)|Fit1=4.334(66)(25)×10-3,BR(τKSπντ)|Fit2=4.390(48)(26)×10-3,BR(τKSπντ)|Fit3=4.284(35)(25)×10-3,BR(τKSπντ)|Fit4=4.377(49)(26)×10-3, 35

where the first error refers to the statistical uncertainty propagated from the fit parameters and the second one to the normalization, see Table 2. In this way, we do not make an attempt to extract the absolute normalization from the τ data, but rather perform a consistency check with the K3 data. Moreover, we do not propagate the systematic uncertainties incurred indirectly when using K3 input for the subtraction constants λ and λ, nor the uncertainties on the S-wave phase as given in Table 1, which are expected to be negligible in this application as they only become relevant above the τ mass.

Since we cannot give preference to any particular fit variant, we quote the average over all four versions as central value and assign the spread as systematic uncertainty

BR(τKSπντ)=4.35(6)st(3)norm(7)sys×10-3=4.35(10)×10-3. 36

This result lies 2σ above the original Belle result BR(τKSπντ)|[65]=4.04(13)×10-3, but agrees with the more recent BR(τKSπντ)|[79]=4.16(8)×10-3 as well as the PDG average BR(τKSπντ)|[54]=4.19(7)×10-3 at the level of 1.5σ. We thus conclude that the branching fraction extracted by combining the shape as measured in the Belle spectrum with the normalization from K3 decays comes out consistent with the direct measurement in τ decays.

CP asymmetry

The CP asymmetry in τKSπντ is defined as

ACPτ=Γτ+π+KSν¯τ-Γτ-π-KSντΓτ+π+KSν¯τ+Γτ-π-KSντ. 37

In the Standard Model, it is dominated by indirect CP violation, leading to the prediction [54]

ACPτ=AL=ΓKLπ-+ν-ΓKLπ+-ν¯ΓKLπ-+ν+ΓKLπ+-ν¯=3.32(6)×10-3, 38

which is in conflict with the 2012 measurement by the BaBar collaboration [80]

ACPτ,exp=-3.6(2.3)(1.1)×10-3. 39

Including small corrections related to the KS reconstruction [81], this amounts to a 2.8σ tension.

As pointed out in Refs. [82, 83], due to the absence of a scalar–vector interference there are limited options to produce an effect with physics beyond the Standard Model (BSM), the only remaining option being a tensor–vector interference. Estimates for its size then depend on the tensor form factor defined by

K¯0(pK)π-(pπ)|s¯σμνu|0=ipKμpπν-pKνpπμMKBT(s), 40

based on which the CP asymmetry takes the form [37]

ACPτ,BSM=ImcTΓτBR(τKSπντ)×sπKmτ2dsκ(s)|f+(s)||BT(s)|×sin(δ+(s)-δT(s)), 41

where sπK=(Mπ+MK)2, δT(s) is the phase of BT(s),

κ(s)=GF2|Vus|2SEWτqπK3mτ2-s232π3mτ2MKs, 42

and ImcT is the imaginary part of the tensor Wilson coefficient. The key observation made in Ref. [37] is that Watson’s theorem implies δ+(s)=δT(s), so that the strong phase due to the K(892) cancels in Eq. (41), with the remaining inelastic effect due to the K(1410) suppressed by two orders of magnitude. A simple BW estimate was used to argue

|ACPτ,BSM|[37]0.03|ImcT|, 43

which, together with limits on ImcT from the neutron electric dipole moment and DD¯ mixing, was sufficient to exclude this explanation of the BaBar measurement (39).

The estimate (43) was subsequently revisited in Refs. [8486], mostly in the framework of RChT, including the suggestion in Ref. [86] to constrain the tensor form factor using large-Nc arguments [87]. As another application of the improved treatment of the scalar form factor and, in consequence, the vector form factor as extracted from the τ spectrum, we now turn to a refined evaluation of Eq. (41).

While the normalization is determined from lattice QCD, BT(0)=0.686(25) [88], to constrain the phase of the tensor form factor beyond the elastic region, we need information about the coupling of the K(1410) to the tensor current relative to its vector-current coupling, which in the parameterization (28) is contained in β. As pointed out in Ref. [86], such a constraint can be extracted from the large-Nc pattern derived in Ref. [87],

ξn=fVnTfVn(-1)n12, 44

for the ratio of tensor over vector coupling constants for the nth excitation of a vector meson. For the ground state n=0 one has [89]

fK(892)TfK(892)=BT(0)MK(892)2MK0.62, 45

indeed close to 1/2. Denoting the tensor analog of β by γ, these arguments lead to

γ=-MK(892)MK(1410)β-0.63β, 46

which would change to

γ=-2MKBT(0)MK(1410)β-0.73β 47

if the lattice-QCD number (45) were used for the K(892), but the asymptotic value 1/2 for the K(1410). In the following, we will thus use the estimate γ=-0.7β, discarding the (unlikely) possibility of the opposite sign [87], in which case the CP asymmetry would be even further suppressed.

Averaging over the four fit variants given in Table 3, with βγ for the tensor form factor, we obtain

ACPτ,BSM=-0.034(11)(7)(5)ImcT=-0.034(14)ImcT, 48

where the uncertainties refer to the systematic effects when including c1(1), α(2), and a 30% large-Nc uncertainty assigned to the tensor phase, respectively. The final result thus nicely confirms the simple estimate of Eq. (43).

Pole extraction

Resonances manifest themselves as poles on the unphysical Riemann sheets of the S- or, equivalently, the T-matrix. The pole position in the complex plane, sR, is conventionally parameterized in terms of a mass parameter MR and a width parameter ΓR via

sR=MR-iΓR2. 49

For resonances distorted by threshold effects or overlapping resonances, the value of ΓR neither agrees with the visible width nor can it be directly related to the lifetime of the state. Moreover, for these cases and broad resonances, MR and ΓR can deviate significantly from the corresponding BW parameters, which are model- and reaction-dependent quantities.

As T0 has a complicated analytic structure due to left-hand cuts, which cannot be deduced from the phase shift alone, an analytic continuation to other Riemann sheets is not feasible. However, as T-matrix and form factor are smooth functions when moving across a cut from the physical Riemann sheet to the connected unphysical sheet, we can use Padé approximants to determine the nearest pole on the neighboring unphysical sheet.

Assuming that an amplitude F(s) is analytic inside the disc Bδ(s0) around some expansion point s0(N) except for one simple pole, we can expand F(s) according to Montessus’ theorem as

P1N(s,s0)=n=0Nan(N)s-s0(N)n1+b(N)s-s0(N), 50

with an(N),b(N)C. This enables us to extract the resonance lying closest to the expansion point s0. The pole position sR(N) and corresponding residue R(N) of the Padé approximant are given by

sR(N)=-1b(N)+s0(N),R(N)=n=0N(-1)nan(N)b(N)n+1. 51

For a more detailed introduction into the applications of Padé theory, see Refs. [9092].

To determine the parameters an(N) and b(N), we fit Padé approximants to the scattering matrix T11 and the form factor (fs)1. As both T11 and (fs)1 contain the same pole, the parameter b(N) is the same, while the an(N) coefficients are allowed to be different in the two fits. Note that in the present study the energy range of the form factor is limited by the τ mass, such that the parameters of the K0(1950) resonance are fixed by the T-matrix only. Furthermore, the K0(1430) resonance is located in close proximity to the ηK threshold, in such a way that the expansion of Eq. (50) needs to be modified. To include the non-analyticities of the two closest relevant thresholds, in Ref. [91] it was proposed to perform the expansion not in s, but in the conformal variable

ω(s)=s-s1th-s2th-ss-s1th+s2th-s, 52

with s1th and s2th denoting the lower and upper threshold, respectively. This transformation maps the first and adjacent unphysical Riemann sheet to a unit circle in ω without introducing any unphysical discontinuities, allowing for a better convergence of the Padé series. As the main decay channel of the K0(1430) is πK, we set s1th=(MK+Mπ)2 and s2th=(MK+Mη)2.

The systematic uncertainty originating from the Padé approximant is estimated by

Δsys(N)=sR(N)-sR(N-1). 53

The statistical uncertainty is obtained via a bootstrap analysis by varying the underlying amplitudes within their respective 1σ uncertainties. The resulting uncertainties are then added in quadrature,

Δtotal(N)=Δst2+Δsys(N)2. 54

For any given value of N, the extracted pole position in general still depends on the expansion point s0(N). Hence we first calculate the Padé approximants for a wide range of s0(N) values. For appropriate values of s0(N) the extracted pole stabilizes. We therefore choose that value of s0(N) for each N that minimizes Δsys(N). Furthermore, resonance couplings and branching ratios to πK can be calculated via the residue R, which can be expressed in terms of the T-matrix

limssp(s-sp)Tij=-Rij. 55

For the normalization of the channel coupling g~jR of a resonance R to channel j we choose the convention given in the resonance review of Ref. [54]

g~jR=Rij/Rii, 56

corresponding to a partial width ΓRi defined by

ΓRi=|g~iR|2MRρiMR2. 57

Note that only for narrow, non-overlapping resonances, these partial widths sum up to the resonance width ΓR defined in Eq. (49).

For the K0(1950), Fig. 9 illustrates a clear convergence of the pole position for increasing orders N of the Padé series, which is truncated at N=5. The extracted pole corresponds to a mass of 1863(11)(4)MeV and a decay width of 272(38)(8)MeV, as shown in Table 4. According to the PDG, the K0(1950) still needs confirmation and is quoted with a mass of 1945(22)MeV and a width of 201(90)MeV [54]. However, this average is based only on the analysis of Ref. [63], where the data are fit using a simple BW distribution with an energy-dependent width and a linear background term in a limited energy range including the K0(1950). A comparison to the other results listed by the PDG is shown in Fig. 10. Both Refs. [93, 94] are based on the data from Ref. [63]. Reference [93] uses a K-matrix formalism including πK, ηK, and a generalized multimeson channel. The authors find, similarly to our analysis, a state with comparable width but a significantly smaller mass in comparison to Ref. [63]. Using a BW ansatz with constant width, improved by incorporating some of the left- and circular-cut contributions via a dispersion integral, Ref. [94] finds a K0(1950) mass and width similar to Ref. [63], which should probably be expected given that the left-hand cut contribution should not influence the 1.9GeV mass region significantly.

Fig. 9.

Fig. 9

Uncertainty regions Δsys(N) as defined in Eq. (53) for the optimal value of s0 on the pole position of the K0(1950)

Table 4.

Results of Padé extractions at N=5 for the K0(1950) including statistical (first bracket) and systematic uncertainties (second bracket)

sR(5) (MeV) 1863(11)(4)-i136(19)(4)
Δsys(5) (MeV) 4
s0(5) (GeV) 1.86
modg~πKK0(1950) (GeV) 4.32(35)(8)
argg~πKK0(1950) -0.20(3)(1)
ΓK0(1950)πK (MeV) 184(19)(4)
ΓK0(1950)πK/Γtot 0.70(7)(2)

Fig. 10.

Fig. 10

Extracted pole position of the K0(1950) in comparison to the works of Aston et al. [63], Anisovich and Sarantsev [93], and Zhou and Zheng [94]

We find a partial width to πK of 184(19)(4)MeV, resulting in a branching fraction of 0.70(7)(2). This is slightly larger than the results obtained in Ref. [63] with 0.52(8)(12) and the estimate in Ref. [94] quoting a branching fraction of 0.6, however, still compatible within uncertainties. As the statistical uncertainties become most significant at higher energies, they dominate the total uncertainty.

In the case of the K0(1430) resonance, the Padé fits prove less stable than for the K0(1950). According to Montessus’ theorem, to ensure convergence of the Padé series, the amplitude F(s) needs to be known in a compact subset of the disc Bδ(s0). Therefore, the Padé approximants should, in principle, also be fixed off the real axis. However, for this procedure we observe large statistical uncertainties on the coefficients of the polynomial as well as the pole parameters, which are likely induced by the nearby branch-point singularity of the ηK threshold. Alternatively fixing the Padé approximants solely on the real axis dramatically improves the stability of the fit. Although the fit then has less information on the gradient in the complex plane, we still find a good agreement of this fit to the amplitude even off the real axis on the physical sheet. Furthermore, this Padé series reproduces T-matrix and form factor on the real axis, which is the only part fixed by experimental data, particularly well. We still observe an unusual fluctuation of the extracted pole position, especially for small orders N of the Padé approximants, as seen in Fig. 11. However, for N6 the theoretical uncertainty begins to stabilize, with Δsys(N) being consistent with the value of N=6. Since the N=7 and N=8 ellipses do not fully overlap and the uncertainty of N=8 is even larger than that of N=7, we use parameters and uncertainties derived from N=6 as our final outcome; see Table 5. This results in a mass of 1408(4)(47)MeV and a decay width of 360(14)(96)MeV. The comparison to other values listed by the PDG is shown in Fig. 12.

Fig. 11.

Fig. 11

Uncertainty regions Δsys(N) as defined in Eq. (53) for the optimal value of s0 on the pole position of the K0(1430)

Table 5.

Results of Padé extractions at N=6 for the K0(1430) including statistical (first bracket) and systematic uncertainties (second bracket)

sR(6) (MeV) 1408(4)(47)-i180(7)(47)
Δsys(6) (MeV) 47
s0(6) (GeV) 1.36
modg~πKK0(1430) (GeV) 4.96(14)(78)
argg~πKK0(1430) 0.06(1)(4)
ΓK0(1430)πK (MeV) 304(8)(42)
ΓK0(1430)πK/Γtot 0.87(2)(11)

Fig. 12.

Fig. 12

Extracted pole position of the K0(1430) in comparison to Peláez et al. [5], Lees et al. [95], Bugg (2010) [96], Bonvicini et al. [97], Bugg (2006) [98], Zhou and Zheng [94], Zeng et al. [99], Aitala et al. [100], Anisovich and Sarantsev [93], and Aston et al. [63]

Although we use the elastic formalism of Ref. [64] as input, we obtain a somewhat larger decay width for the K0(1430) than the one extracted in Ref. [5], although the difference is not significant. It might be related to the fact that our fits of the phase shifts start to deviate from those of Ref. [64] in the energy range of the K0(1430), see Fig. 2. As illustrated in Fig. 11, the Padé analysis is quite stable with respect to the width of the K0(1430), which gives some confidence in the rather large value of ΓK0(1430) extracted here. For the partial width to πK we find a value of 304(8)(42)MeV, corresponding to a branching fraction of 0.87(2)(11). Within uncertainties this is consistent with the value obtained in Ref. [63], 0.93(4)(9).

Finally, the coupling of a scalar resonance R to the s¯γμu current is again determined in a model-independent way in terms of its residue CRus, which can be extracted from the scalar form factor near the pole sR according to

f¯0(s)=23g~πKRCRussR-s, 58

where the coefficient has been chosen to ensure that CRus matches the conventions of Refs. [41, 101]. The results for CK0(1430)us for our Fits 1–4 are given in Table 6, compared to literature values from Refs. [41, 101, 102]. We stress that CRus is the unambiguous observable that describes the resonance properties, which only for narrow resonances corresponds to a physical branching fraction. However, to facilitate the comparison of different conventions, it is useful to formally define branching fractions by the narrow-width relation, even for resonances as broad as the σ [103, 104]. In the case of the s¯γμu current the decay width for τRντ for an S-wave resonance R in the narrow-width approximation reads

Γ(τRντ)=6π2cΓΔπK2MR4(1-MR2mτ2)2|CRus|2, 59

where the factor BR(RπK) for the branching fraction should be added if R is only reconstructed in the πK channel. This form can be extracted from Eq. (20) by inserting Eq. (58), identifying the square of the propagator with π/(MRΓR)δ(s-MR2), where ΓR is connected to sR via Eq. (49) and the limit ΓR0 is formally assumed, and finally expressing |g~πKR|2 by the resonance width defined in Eq. (57) (see Refs. [105107] for more details, to identify the ρ contribution in the pseudoscalar decays Pππγ and crossed reactions). In addition, Eq. (59) includes a factor 3 to account for all Kπ decay channels of the K0(1430).

Table 6.

Results for the K0(1430) residue and the corresponding τK0(1430)ντ branching fraction, in comparison to the literature. The limit is given at 95% confidence level

|CK0(1430)us| (GeV) BR(τK0(1430)ντ)
Fit 1 0.23(4) 0.31(11)×10-4
Fit 2 0.37(8) 0.78(38)×10-4
Fit 3 0.11(2) 0.07(3)×10-4
Fit 4 0.31(5) 0.55(20)×10-4
Other theoretical determinations
   Ref. [101] 0.37 0.79×10-4
   Ref. [41] 0.28 0.45×10-4
Experiment
   Ref. [102] <0.93 <5×10-4

Table 6 shows that the residues extracted from the fits to τKSπντ scatter around the literature values from other theoretical investigations. We deduce from our analysis an upper limit for the τK0(1430)ντ branching fraction, BR(τK0(1430)ντ)<1.6×10-4 (at 95% confidence level), that improves the literature value [54, 102] by a factor 3. The difference of our findings to those of Refs. [41, 101] can be traced back to their more rigid parameterization of the scalar form factor, which in both cases is determined once the input T-matrix is specified. In our case, when the coupling to the K0(1950) or a linear term in the source are admitted, the fit to the τ spectrum implies a larger scalar form factor than in the most constrained Fit 3, which translates into a larger residue. A more reliable extraction of |CK0(1430)us| from τKSπντ would thus require more precise data, ideally on the forward–backward asymmetry to allow for a better separation of the S- and P-wave components. Such data actually exist for BKππ decays [41], but at the expense of additional hadronic uncertainties due to the presence of the spectator pion.

Conclusions

In this paper we presented a parameterization of the scalar πK form factor that extends into the inelastic region, assuming that the main inelastic effects proceed via the K0(1430) and K0(1950) resonances. Technically, this is achieved by combining an Omnès description in terms of the πK phase shift, valid in the elastic region, with a potential ansatz that incorporates (bare) resonance poles. The formalism, here employed for two channels, ensures that the result respects all constraints from analyticity and unitarity. In particular, Watson’s theorem in its domain of validity is fulfilled by construction. We then collected the required input to determine the S-wave πK T-matrix from state-of-the-art analyses of πK scattering, leading to a parameterization of the scalar form factor valid up to 2.3GeV.

As a first application, we considered the τKSπντ spectrum, especially its part above 1GeV that is dominated by inelastic contributions both in the S- and P-wave. Employing a RChT description of the vector form factor, we found that, in combination with the information on the K0(1430) incorporated in the input S-wave T-matrix, the spectrum allows one to determine the K(1410) mass at the level of 30MeV. An improved separation of these overlapping resonances, as well as distinguishing among the fit variants shown in Figs. 4, 5, 6, and 7, requires additional information on the form factor phase motions, which could be obtained via a future measurement of the forward–backward asymmetry, e.g., at Belle II, see Fig. 8. Estimating the K(1410) tensor coupling via large-Nc arguments, the resulting vector form factor also allows us to derive a refined estimate of the CP asymmetry generated by a tensor operator, see Eq. (48).

Finally, we considered the extraction of the K0(1430) and K0(1950) resonance properties from the scalar T-matrix and form factor via Padé approximants, leading to the constraints on the pole positions shown in Figs. 10 and 12. For the K0(1950) we find an improved precision compared to previous analyses, with an uncertainty dominated by the fit to πK scattering input. For the K0(1430) the uncertainty is dominated by the systematics of the Padé expansion, likely related to the proximity of the ηK threshold. We also provided results for the pole residues and the corresponding branching fractions, both for πK scattering and the coupling to the s¯γμu current.

In conclusion, our representation for the scalar πK form factor proves adequate well beyond the elastic region, and can be constrained phenomenologically up to energies where analyses of πK scattering are available. This covers the entire kinematic range probed in the τ decay, includes the K0(1950) resonance region, and should thus allow for a meaningful description of the πK form factor in future analyses of semileptonic D- and B-meson decays. In particular, combined analyses with τKSπντ data along the lines presented here should keep the number of free parameters to a minimum.

Acknowledgements

We thank D. Epifanov and S. Eidelman for communication on Ref. [65] and D. van Dyk, J. R. Peláez, A. Rodas, S. Ropertz, and J. Ruiz de Elvira for useful discussions. Financial support by the SNSF (Project No. PCEFP2_181117), the DFG through the funds provided to the Sino–German Collaborative Research Center TRR110 “Symmetries and the Emergence of Structure in QCD” (DFG Project-ID 196253076 – TRR 110), the Bonn-Cologne Graduate School of Physics and Astronomy (BCGS), and the European Union’s Horizon 2020 research and innovation programme under Grant agreement no. 824093 is gratefully acknowledged.

Data Availability Statement

This manuscript has no associated data or the data will not be deposited. [Authors’ comment: There is no data because the work is of theoretical nature.]

Footnotes

1

New πK scattering data are planned to be taken by a neutral-kaon-beam experiment at Jefferson Lab [57].

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Associated Data

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Data Availability Statement

This manuscript has no associated data or the data will not be deposited. [Authors’ comment: There is no data because the work is of theoretical nature.]


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