REVIEW 3 major objections 6 minor 98 references
Vectorlike $\tau$ production through leptoquarks
T0 review · 3 major / 6 minor · reviewed 2026-08-15 · deepseek-v4-flash
Pith's one-line read Leptoquarks could dominate vectorlike tau production at LHC.
desk verdict Useful and systematic HL-LHC study of LQ-mediated vectorlike tau production, but the advertised reach rests on an unvalidated near-100% Br(LQ -> tau2 + quark) assumption. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The carrier of the argument is the coupling of a leptoquark (a colour-charged boson connecting a quark and a lepton) to a third-generation singlet vectorlike tau $\tau_2$. For such a state, the possible LQ species are the scalars $S_1$, $\widetilde S_1$, $R_2$ and the vectors $U_1$, $\widetilde U_1$, $V_2$, each with a renormalisable interaction listed in Table I. The mechanism is the coupling-power hierarchy among the production modes: pair production (PP) is essentially coupling-independent, single production (SP) and the indirect–QED interference (II) scale as $\lambda^2$, and indirect production (IP) via t-channel LQ exchange scales as $\lambda^4$, so IP wins at large $\lambda$ and high LQ mass. The paper assumes $M_{\ell q} > M_{\tau_2}$, so the LQ decays on shell to $\tau_2$ plus a quark with branching ratio near 100%.
What would settle it
Measure the leptoquark branching fractions: if the decay to an ordinary charged lepton and a quark, $BR(\ell q \to \ell q)$, is anywhere near the size of the decay to $\tau_2$ plus a quark rather than being smaller by an order of magnitude or more, the predicted mono- and di-lepton signals and the derived HL-LHC contours do not hold. A direct null result from a dedicated HL-LHC search in the mass–coupling region the paper maps as a $5\sigma$ discovery would also falsify the enhancement claim.
Extended reading notes
Core claim
The central claim is stated directly in the abstract: LQ-mediated processes enhance VLL production at the LHC. Concretely, when a leptoquark couples to a first-generation quark and a weak-singlet vectorlike tau $\tau_2$, t-channel leptoquark exchange between two initial-state quarks produces $\tau_2$ pairs with a cross section proportional to the fourth power of the coupling $\lambda$; for $\lambda$ in the range roughly 0.3 to 1, this indirect production dominates the electroweak $Z/\gamma^*$ channel at large leptoquark mass. The interference between the two amplitudes is destructive for some leptoquark species and constructive for others, which shifts the reach, and the paper works through all six singlet-VLL-capable leptoquarks. With the $\tau_2$ decaying to $W\nu$ or $Z\tau$, the mono-lepton final state has slightly better sensitivity than the di-lepton final state, and the HL-LHC can give $2\sigma$ exclusion or $5\sigma$ discovery contours in the mass–coupling plane up to several TeV.
Load-bearing premise
The load-bearing premise is that the leptoquark decays to a vectorlike tau plus a quark with nearly 100% branching fraction, which in turn requires the leptoquark's couplings to ordinary quark–lepton pairs to be negligible.
Editorial extensions
If this is right
- The mono-lepton channel is the most sensitive single search, so lepton-plus-jets-plus-missing-energy analyses are the first place to look for this class of models.
- For order-one couplings, the HL-LHC reach extends to leptoquark masses of several TeV, well beyond the roughly 1.5–2 TeV limits that assume leptoquarks decay directly to Standard Model fermions.
- Existing leptoquark mass limits do not constrain the parameter region where leptoquarks decay mainly to vectorlike taus, so that region is currently unexplored and should be searched with VLL-plus-jet topologies.
- The $\lambda^4$ scaling of indirect production makes the production-rate dependence on coupling qualitatively different from electroweak production, providing a kinematic handle to separate the two mechanisms if a signal appears.
- The constructive-interference leptoquark species (notably $\widetilde U_1$) give a stronger reach than their destructive-interference partners, so searches are best targeted at those states first.
Reading between the lines
- Reading beyond the paper: if the enhancement is real, recasting old leptoquark limits from SM-decay searches will miss the VLL-decay region entirely; dedicated VLL-plus-jet searches are needed to cover it.
- The $\lambda^4$ dependence of indirect production suggests a way to extract the coupling: measuring $\tau_2$-pair production at two LQ masses, or comparing the IP-dominated high-mass rate with the PP-dominated low-mass rate, could constrain $\lambda$ without relying on the assumed branching ratio for the decay.
- The same mechanism should transfer to other flavours, such as a vectorlike muon partner coupled to second-generation quarks; the parton luminosities and backgrounds would shift, but the enhancement logic is flavour-generic.
- If the $\tau_1$–$\tau_2$ mixing is smaller than the value implied by an SM-tau-sized off-diagonal term, the decays become displaced, turning these prompt signatures into long-lived-particle searches; the paper notes this possibility without quantifying it.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper proposes a scenario in which a heavy vectorlike tau (τ2) is produced at the LHC through interactions with leptoquarks (LQs) that couple preferentially to first-generation quarks and the VLL. It considers the six scalar/vector LQ representations that can couple to a singlet VLL, computes pair, single, indirect (t-channel) and interference contributions to τ2 pair production, and performs a Delphes-based cut-and-count analysis of mono-lepton and di-lepton final states at the HL-LHC (14 TeV, 3 ab−1). The main output is a set of 2σ exclusion and 5σ discovery contours in the M_LQ–λ and M_LQ–M_τ2 planes, obtained under the assumptions that LQ couplings to SM quarks and leptons are negligible and that Br(LQ→τ2 q) ≈ 1. The central claim is that t-channel LQ exchange can make τ2 pair production much larger than the conventional electroweak production for O(1) couplings, opening a new probe of both LQs and VLLs.
Significance. The framework is timely and the proposed signatures are concrete and falsifiable. If the branching-ratio assumption is justified, the analysis demonstrates that the HL-LHC can probe LQ masses up to several TeV and coupling values well below the current sensitivity of standard LQ searches. The authors provide a reproducible simulation chain (FeynRules/MadGraph/Pythia/Delphes), report detailed cutflows and background cross sections, and make explicit predictions that can be tested by the ATLAS and CMS collaborations. The main weakness is the lack of a UV derivation or a dedicated simulation of the assumed LQ branching ratios; this limits the robustness of the claimed reach but is addressable in a revision.
major comments (3)
- [Sec. II and Sec. III.A] The near-100% branching ratio for LQ→τ2 q is assumed (Sec. II, after Table I, and Sec. III.A, page 4) without a UV motivation. The PP and SP contributions in Eq. (8) and the low-mass parts of Figs. 4 and 5 depend directly on this Br, and the only numerical control offered in Sec. V (an ℓqqℓ coupling ≲ 0.3 for <10% contamination in the dilepton channel of eU1/eS1) is a branching-ratio estimate rather than a signal-region simulation; it does not cover the mono-lepton channel, does not account for Br²/Br suppression of the PP/SP signals, and does not include the different kinematics of LQ→SM lepton+jet events. Please either embed the model in an explicit flavour structure that guarantees the hierarchy or simulate both decay modes simultaneously and propagate the branching fraction through Eq. (8) into the contours.
- [Sec. III, page 4, and Fig. 4] The signal cross sections for SP, IP, and II are used at LO, and the only higher-order correction applied is a K-factor of 1.58 for sLQ pair production; vLQ PP is also left at LO. Since the vertical shaded bounds in Fig. 4 are derived from PP alone with x/y→0, the vLQ PP treatment directly affects the claimed model-independent mass limits. Please quantify the NLO uncertainty on vLQ PP (and ideally on SP/IP/II) or show that the contours are insensitive to a conservative K-factor range.
- [Sec. III.A and Fig. 4] The scans extend to λ = 3.5, where the LQ width from the τ2 q coupling alone is Γ/M ∼ λ²/(16π) ≈ 0.24, so the narrow-width approximation used for the on-shell LQ decays in PP and SP is not valid and the coupling is in a nonperturbative regime. The authors should either truncate the scan at a perturbative value (e.g., λ ≲ 1 or at least specify the width used in the simulation), include finite-width/off-shell effects, or explicitly demonstrate that the large-λ contours are controlled by the t-channel IP contribution and are therefore insensitive to the NWA.
minor comments (6)
- [Sec. IV, Table III] The text states that events are required to contain at least one AK4 jet and at least one fatjet, but this requirement is not listed among the cuts C1–C4 in Table III; please include it explicitly or clarify that it is part of the preselection.
- [Table IV] The caption uses parentheses to denote vLQ numbers but does not specify which vLQ species is used (e.g., U1 for S1, eU1 for eS1); please make the association explicit.
- [Table I] The coupling notation (e.g., y^RR_{10,13}) is not defined in the table caption; a brief explanation of subscripts/superscripts would improve readability.
- [Sec. V, last paragraph] The 10% contamination statement would benefit from the explicit formula it comes from; as written, it is a single unquantified number that the reader cannot verify.
- [Introduction, page 1] Reference [60] is cited as having considered a 4321 benchmark with VLL production via an off-shell LQ, but the listed reference is a CMS experimental search for pair-produced VLLs; this citation appears incorrect and should be checked.
- [Eq. (8), Sec. V] Since σII is negative for destructive interference (as noted for S1 and U1), the text should state explicitly that σII is a signed quantity.
Circularity Check
No significant circularity: the HL-LHC prospects are Monte Carlo predictions from an explicit Lagrangian; the self-citations are technical and not load-bearing.
full rationale
The paper's derivation chain is self-contained. It begins from an explicit Lagrangian (Eq. (1), Table I) with a free LQ–τ2–quark coupling, enumerates the PP, SP, IP and II production modes and the τ2 decay chains, and computes signal and background event rates with externally maintained tools (FeynRules, MadGraph5, Pythia8, Delphes3, FastJet) using the fixed selection criteria of Table III and the Asimov significance formula of Eq. (9). No parameter is fitted to the data that the prediction is supposed to explain: the exclusion and discovery contours in Figs. 4 and 5 are direct functions of the assumed masses, coupling, and Br(LQ→τ2 q) ≈ 1. The assumptions that LQ couplings to SM quark–lepton pairs are negligible and that the LQ→τ2 q branching ratio is nearly 100% (Sec. II after Table I; Sec. III A) are free model inputs, not outputs of the analysis; their fragility is a model-validity concern, not circularity. The Sec. V estimate that ℓqqℓ couplings ≲ 0.3 keep contamination below 10% is a consistency check rather than a fitted prediction. The self-citations (for example, Ref. [53] for coupling nomenclature and Refs. [49,54] for the production-mode decomposition) are technical references and are not load-bearing, because the relevant matrix elements and efficiencies are recomputed here with MadGraph and Delphes. No uniqueness theorem or prior result is invoked to force the model choice or the cuts. Thus no step in the derivation reduces, by the paper's own equations or by self-citation, to its own input.
Assumptions & free parameters
free parameters (5)
- LQ mass M_lq (e.g., M_S1, M_U1) =
scanned from ~1 to 7 TeV
- VLL mass M_tau2 =
scanned from 300 to 900 GeV
- LQ-VLL-quark coupling lambda (y or x) =
scanned from 0 to 3.5 (Fig. 4)
- VLL off-diagonal mass term / mixing angle =
set to order m_tau
- vLQ gluon coupling kappa =
1
assumptions (5)
- domain assumption CKM and PMNS mixing matrices are approximated as identity
- domain assumption LQ couplings to SM quark-lepton pairs are negligible
- domain assumption Mass hierarchy M_lq > M_tau2 and BR(LQ -> tau2 q) ~ 100%
- domain assumption The VLL decay is prompt, with off-diagonal mass term of order m_tau
- ad hoc to paper Narrow-width approximation and perturbativity hold up to lambda=3.5
Cite this review
Pith. "Pith review of Vectorlike $\tau$ production through leptoquarks." pith.science (2026). https://pith.science/paper/OFRIHPG3
@misc{pith2026250818047,
author = {Pith},
title = {Pith review of: Vectorlike $\tau$ production through leptoquarks},
year = {2026},
howpublished = {\url{https://pith.science/paper/OFRIHPG3}},
note = {Machine review of arXiv:2508.18047}
}
read the original abstract
Numerous phenomenological studies and collider searches have probed for the existence of new physics by looking for signatures of leptoquarks (LQs) or vectorlike leptons (VLLs). We consider a new possibility that can arise in theories with enhanced gauge symmetries: both particles are simultaneously present, and LQ-mediated processes enhance the VLL production at the LHC. We study the effect of non-standard interactions of LQs that contribute to novel production and decay signatures. We obtain the HL-LHC prospects of this framework in the mono-and di-lepton final states, and discuss other potentially relevant channels.
Figures
Reference graph
Works this paper leans on
-
[1]
In our analysis, we consider the following two de- cay chains
Monolepton A monolepton final state (ℓ =e,µ) can arise from the de- cay ofτ2 pairs produced through different LQ production modes. In our analysis, we consider the following two de- cay chains. pp→ ℓqℓq ℓqτ2 (+j) τ2τ2 (+j) → (jτ 2)(jτ 2) (jτ 2)τ2 (+j) τ2τ2 (+j) → ντW∓ h ντW± ℓ +jet(s) τℓZhνℓW± h +jet(s) . In the first chain, bothτ2 ...
-
[2]
These arise primarily from two dominant decay chains
Dilepton In the dilepton channel, we combine theee, µµ, andeµ modes. These arise primarily from two dominant decay chains. pp→ ℓqℓq ℓqτ2 (+j) τ2τ2 (+j) → (jτ 2)(jτ 2) (jτ 2)τ2 (+j) τ2τ2 (+j) → ντ2W∓ ℓ ντ2W± ℓ +jet(s) ντ2W∓ ℓ τ∓ ℓ Zh +jet(s) . In the first case, bothτ2 decay intoW +ν, with bothW bosons subsequently decaying leptonica...
-
[3]
The relevant production and decay chains are as follows
Trilepton For trilepton final states, bothτ2 can decay either symmet- rically intoZ +ν or asymmetrically, with one decaying into W +ν and the other intoZ +ν. The relevant production and decay chains are as follows. pp→ ℓqℓq ℓqτ2 (+j) τ2τ2 (+j) → (jτ 2)(jτ 2) (jτ 2)τ2 (+j) τ2τ2 (+j) → ντ2W∓ ℓ τ∓ hZℓ +jet(s). Although the cross sectio...
-
[4]
The relevant production and decay chains are as follows
Quadlepton The quadlepton final states, consisting of four charged lep- tons, can originate either from a symmetric decay, where both τ2 decay intoZ +τ, or from an asymmetric config- uration in which oneτ2 decays intoW +ν and the other intoZ +τ. The relevant production and decay chains are as follows. pp→ ℓqℓq ℓqτ2 (+j) τ2τ2 (+j) → (jτ 2)...
1903
-
[5]
Five-lepton final states can arise exclusively from the symmetric decay of bothτ2 particles via the Z + τ channel
Five and six leptons Final states with charged-lepton multiplicity greater than four are strongly suppressed by their small cross sections and are therefore extremely challenging to observe at col- liders. Five-lepton final states can arise exclusively from the symmetric decay of bothτ2 particles via the Z + τ channel. The representative production and de...
-
[6]
This results in a final state characterised by one or more fat jets accompanied by missingtransverseenergy, butnoisolatedchargedleptons
Fatjet plus missing energy In this scenario, theτ2 particles may decay either symmet- rically or asymmetrically, with all subsequent decay prod- ucts undergoing hadronic decays. This results in a final state characterised by one or more fat jets accompanied by missingtransverseenergy, butnoisolatedchargedleptons. The relevant production and decay processe...
-
[7]
The decay width is controlled by the off-diagonal term in the mass matrix
Displaced vertex The VLL can also give rise to displaced vertex signatures if its decay width is sufficiently small. The decay width is controlled by the off-diagonal term in the mass matrix. In this work, we assume this term to be of the order of the SM τ lepton mass. However, if it were instead of the order of the electron mass, theτ2 could produce dis-...
2023
-
[8]
After EWSB, withH→ (0, (v +h)/ √ 2)T, this becomes −LY = vλτ√ 2τLτR + vωτ√ 2τLτ′ R +Mτ′τ′ Lτ′ R +h λτ√ 2τLτR + ωτ√ 2τLτ′ R +h.c
Yukawa sector and mass matrix The Yukawa Lagrangian before EWSB is −LY =λτL3LHτR +ωτL3LHτ′ R +Mτ′τ′ Lτ′ R +h.c. After EWSB, withH→ (0, (v +h)/ √ 2)T, this becomes −LY = vλτ√ 2τLτR + vωτ√ 2τLτ′ R +Mτ′τ′ Lτ′ R +h λτ√ 2τLτR + ωτ√ 2τLτ′ R +h.c. This yields the following mass matrix with a non-diagonal mass term: Lmass =− τL τ′ L λτv√ 2 ωτv√ 2 0 Mτ′ τR...
Show all 98 references
-
[9]
DenotingsL,R≡ sinθL,R andcL,R≡ cosθL,R, the rotations are τX τ′ X = cX −sX sX cX τ1X τ2X
Mass diagonalisation and mixing angles The physical states are obtained by diagonalising the mass matrix via a bi-unitary transformation. DenotingsL,R≡ sinθL,R andcL,R≡ cosθL,R, the rotations are τX τ′ X = cX −sX sX cX τ1X τ2X . HereX =L/R and ,{τ1X,τ 2X} are the mass eigensta...
-
[10]
Higgs boson (h): LH =−1 v h cL(M11cR +M12sR)τ 1Lτ1R +cL(−M11sR +M12cR)τ 1Lτ2R −sL(M11cR +M12sR)τ 2Lτ1R +sL(M11sR−M12cR)τ 2Lτ2R i h +h.c
Interaction vertices The interactions of VLL withW,Z andh bosons are given by a. Higgs boson (h): LH =−1 v h cL(M11cR +M12sR)τ 1Lτ1R +cL(−M11sR +M12cR)τ 1Lτ2R −sL(M11cR +M12sR)τ 2Lτ1R +sL(M11sR−M12cR)τ 2Lτ2R i h +h.c. b. Z boson: Mixing generates off-diagonal couplings, allowi...
-
[11]
Decay widths The partial widths of the heavy stateτ2 are: Γ(τ2→Wν ) = M 3 τ2 32πM 2 W gsL√ 2 2 1− M 2 W M 2τ2 2 1 + 2M 2 W M 2τ2 , Γ(τ2→Zτ ) = M 3 τ2 32πM 2 Z gcLsL 2cW 2 1− M 2 Z M 2τ2 2 1 + 2M 2 Z M 2τ2 , Γ(τ2→hτ) = Mτ2 32π 1− M 2 H M 2τ2 2 " −2Mτ1M12 v2 cRsR(c2 L−s2 L) + M ...
-
[12]
Choudhury, K
D. Choudhury, K. Deka, T. Mandal and S. Sadhukhan, Neutrino andZ′ phenomenology in an anomaly-freeU(1) extension: role of higher-dimensional operators, JHEP 06 (2020) 111, [2002.02349]
2020 arXiv
-
[13]
K. Deka, T. Mandal, A. Mukherjee and S. Sadhukhan, Leptogenesis in an anomaly-free U(1) extension with higher-dimensional operators, Nucl. Phys. B991 (2023) 116213, [2105.15088]
2023 arXiv
-
[14]
Thomas Arun, T
M. Thomas Arun, T. Mandal, S. Mitra, A. Mukherjee, L. Priya and A. Sampath,Testing left-right symmetry with an inverse seesaw mechanism at the LHC, Phys. Rev. D105 (2022) 115007, [2109.09585]
2022 arXiv
-
[15]
M. T. Arun, A. Chatterjee, T. Mandal, S. Mitra, A. Mukherjee and K. Nivedita,Search for the Z’ boson decaying to a right-handed neutrino pair in leptophobic U(1) models, Phys. Rev. D106 (2022) 095035, [2204.02949]
2022 arXiv
-
[16]
Bhaskar, Y
A. Bhaskar, Y. Chaurasia, K. Deka, T. Mandal, S. Mitra and A. Mukherjee,Right-handed neutrino pair production via second-generation leptoquarks, Phys. Lett. B843 (2023) 138039, [2301.11889]
2023 arXiv
-
[17]
Mandal, A
T. Mandal, A. Masaye, S. Mitra, C. Neeraj, N. Reule and K. Shah,Pinning down the leptophobicZ′ in leptonic final states with Deep Learning, Phys. Lett. B849 (2024) 138417, [2307.01118]
2024 arXiv
-
[18]
Duraikandan, R
G. Duraikandan, R. Khanna, T. Mandal, S. Mitra and R. Sharma,Right-handed neutrino production through first-generation leptoquarks, Phys. Rev. D111 (2025) 075032, [2412.19751]
2025 arXiv
-
[19]
Poh and S
Z. Poh and S. Raby,Vectorlike leptons: Muon g-2 anomaly, lepton flavor violation, Higgs boson decays, and lepton nonuniversality, Phys. Rev. D96 (2017) 015032, [1705.07007]
2017 arXiv
-
[20]
Crivellin, F
A. Crivellin, F. Kirk, C. A. Manzari and M. Montull,Global Electroweak Fit and Vector-Like Leptons in Light of the Cabibbo Angle Anomaly, JHEP 12 (2020) 166, [2008.01113]
2020 arXiv
-
[21]
Hamaguchi, N
K. Hamaguchi, N. Nagata, G. Osaki and S.-Y. Tseng, Probing new physics in the vector-like lepton model by lepton electric dipole moments, JHEP 01 (2023) 100, [2211.16800]
2023 arXiv
-
[22]
del Aguila, J
F. del Aguila, J. de Blas and M. Perez-Victoria,Effects of new leptons in Electroweak Precision Data, Phys. Rev. D78 (2008) 013010, [0803.4008]
2008 arXiv
-
[23]
S. P. Martin,Extra vector-like matter and the lightest Higgs scalar boson mass in low-energy supersymmetry, Phys. Rev. D 81 (2010) 035004, [0910.2732]
2010 arXiv
-
[24]
Fileviez Perez and M
P. Fileviez Perez and M. B. Wise,Breaking Local Baryon and Lepton Number at the TeV Scale, JHEP 08 (2011) 068, [1106.0343]
2011 arXiv
-
[25]
Joglekar, P
A. Joglekar, P. Schwaller and C. E. M. Wagner,Dark Matter and Enhanced Higgs to Di-photon Rate from Vector-like Leptons, JHEP 12 (2012) 064, [1207.4235]
2012 arXiv
-
[26]
Kearney, A
J. Kearney, A. Pierce and N. Weiner,Vectorlike Fermions and Higgs Couplings, Phys. Rev. D86 (2012) 113005, [1207.7062]
2012 arXiv
-
[27]
Kumar and S
N. Kumar and S. P. Martin,Vectorlike Leptons at the Large Hadron Collider, Phys. Rev. D92 (2015) 115018, [1510.03456]
2015 arXiv
-
[28]
Bhattacharya, P
S. Bhattacharya, P. Ghosh, N. Sahoo and N. Sahu,A Mini-review on Vector-like Leptonic Dark Matter, Neutrino Mass and Collider Signatures, Front. Phys.7 (2019) 80, [1812.06505]
2019 arXiv
-
[29]
Chakraborty, D
I. Chakraborty, D. K. Ghosh, N. Ghosh and S. K. Rai,Dark Matter and Collider Searches inS3-Symmetric 2HDM with Vector Like Lepton, Eur. Phys. J. C81 (2021) 679, [2104.03351]
2021 arXiv
-
[30]
A. L. Cherchiglia, G. De Conto and C. C. Nishi,Leptonic CP violation from a vector-like lepton, JHEP 03 (2022) 010, [2112.03943]
2022 arXiv
-
[31]
Bigaran, B
I. Bigaran, B. A. Dobrescu and A. Russo,Mutually elusive: Vectorlike antileptons and leptoquarks, Phys. Rev. D109 (2024) 055033, [2312.09189]
2024 arXiv
-
[32]
K. Y. Cingiloglu and M. Frank,Stability of the standard model vacuum with vectorlike leptons: A critical examination, Phys. Rev. D111 (2025) 016025, [2408.10898]
2025 arXiv
- [33]
-
[34]
Bernreuther and B
E. Bernreuther and B. A. Dobrescu,Vectorlike leptons and long-lived bosons at the LHC, JHEP 07 (2023) 079, [2304.08509]
2023 arXiv
-
[35]
Bandyopadhyay, M
P. Bandyopadhyay, M. Frank, S. Parashar and C. Sen, Interplay of inert doublet and vector-like lepton triplet with displaced vertices at the LHC/FCC and MATHUSLA, JHEP 03 (2024) 109, [2310.08883]
2024 arXiv
-
[36]
Q.-H. Cao, J. Guo, J. Liu, Y. Luo and X.-P. Wang,Long-lived searches of vectorlike lepton and its accompanying scalar at colliders, Phys. Rev. D110 (2024) 015029, [2311.12934]
2024 arXiv
-
[37]
ATLAScollaboration, G. Aad et al.,Search for vector-like leptons coupling to first- and second-generation Standard Model leptons in pp collisions at√s = 13 TeV with the ATLAS detector, JHEP 05 (2025) 075, [2411.07143]
2025 arXiv
-
[38]
Tumasyan et al.,Inclusive nonresonant multilepton probes of new phenomena at√s=13 TeV, Phys
CMS collaboration, A. Tumasyan et al.,Inclusive nonresonant multilepton probes of new phenomena at√s=13 TeV, Phys. Rev. D105 (2022) 112007, [2202.08676]
2022 arXiv
-
[39]
Aad et al.,Search for third-generation vector-like leptons inpp collisions at√s = 13TeV with the ATLAS detector, JHEP 07 (2023) 118, [2303.05441]
ATLAScollaboration, G. Aad et al.,Search for third-generation vector-like leptons inpp collisions at√s = 13TeV with the ATLAS detector, JHEP 07 (2023) 118, [2303.05441]
2023 arXiv
-
[40]
J. C. Pati and A. Salam,Unified Lepton-Hadron Symmetry and a Gauge Theory of the Basic Interactions, Phys. Rev. D8 (1973) 1240–1251
1973
-
[41]
J. C. Pati and A. Salam,Lepton Number as the Fourth Color, Phys. Rev. D10 (1974) 275–289. [Erratum: Phys.Rev.D 11, 703–703 (1975)]
1974
-
[42]
Georgi and S
H. Georgi and S. L. Glashow,Unity of All Elementary Particle Forces, Phys. Rev. Lett.32 (1974) 438–441
1974
-
[43]
Fritzsch and P
H. Fritzsch and P. Minkowski,Unified Interactions of Leptons and Hadrons, Annals Phys.93 (1975) 193–266
1975
-
[44]
Schrempp and F
B. Schrempp and F. Schrempp,LIGHT LEPTOQUARKS, Phys. Lett. B153 (1985) 101–107
1985
-
[45]
Kohda, H
M. Kohda, H. Sugiyama and K. Tsumura,Lepton number violation at the LHC with leptoquark and diquark, Phys. Lett. B718 (2013) 1436–1440, [1210.5622]
2013 arXiv
-
[46]
Dimopoulos and L
S. Dimopoulos and L. Susskind,Mass Without Scalars, Nucl. Phys. B155 (1979) 237–252. 12
1979
-
[47]
Farhi and L
E. Farhi and L. Susskind,Technicolor, Phys. Rept.74 (1981) 277
1981
-
[48]
Barbier et al.,R-parity violating supersymmetry, Phys
R. Barbier et al.,R-parity violating supersymmetry, Phys. Rept.420 (2005) 1–202, [hep-ph/0406039]
2005 arXiv
-
[49]
Mandal, S
T. Mandal, S. Mitra and S. Seth,Single Productions of Colored Particles at the LHC: An Example with Scalar Leptoquarks, JHEP 07 (2015) 028, [1503.04689]
2015 arXiv
-
[50]
Mandal, S
T. Mandal, S. Mitra and S. Raz,RD(∗) motivatedS1 leptoquark scenarios: Impact of interference on the exclusion limits from LHC data, Phys. Rev. D99 (2019) 055028, [1811.03561]
2019 arXiv
-
[51]
Aydemir, T
U. Aydemir, T. Mandal and S. Mitra,Addressing theRD(∗) anomalies with anS1 leptoquark fromSO(10) grand unification, Phys. Rev. D101 (2020) 015011, [1902.08108]
2020 arXiv
-
[52]
Chandak, T
K. Chandak, T. Mandal and S. Mitra,Hunting for scalar leptoquarks with boosted tops and light leptons, Phys. Rev. D 100 (2019) 075019, [1907.11194]
2019 arXiv
-
[53]
Bhaskar, D
A. Bhaskar, D. Das, B. De and S. Mitra,Enhancing scalar productions with leptoquarks at the LHC, Phys. Rev. D102 (2020) 035002, [2002.12571]
2020 arXiv
-
[54]
Bhaskar, T
A. Bhaskar, T. Mandal and S. Mitra,Boosting vector leptoquark searches with boosted tops, Phys. Rev. D101 (2020) 115015, [2004.01096]
2020 arXiv
-
[55]
Bhaskar, D
A. Bhaskar, D. Das, T. Mandal, S. Mitra and C. Neeraj, Precise limits on the charge-2/3U1 vector leptoquark, Phys. Rev. D104 (2021) 035016, [2101.12069]
2021 arXiv
-
[56]
Bhaskar, T
A. Bhaskar, T. Mandal, S. Mitra and M. Sharma,Improving third-generation leptoquark searches with combined signals and boosted top quarks, Phys. Rev. D104 (2021) 075037, [2106.07605]
2021 arXiv
-
[57]
Bandyopadhyay, A
P. Bandyopadhyay, A. Karan, R. Mandal and S. Parashar, Distinguishing signatures of scalar leptoquarks at hadron and muon colliders, Eur. Phys. J. C82 (2022) 916, [2108.06506]
2022 arXiv
-
[58]
Bhaskar, A
A. Bhaskar, A. A. Madathil, T. Mandal and S. Mitra, Combined explanation of W-mass, muon g-2, RK(*) and RD(*) anomalies in a singlet-triplet scalar leptoquark model, Phys. Rev. D106 (2022) 115009, [2204.09031]
2022 arXiv
-
[59]
Aydemir, T
U. Aydemir, T. Mandal, S. Mitra and S. Munir,An economical model forB-flavour andaµ anomalies from SO(10) grand unification, 2209.04705
-
[60]
Bhaskar, A
A. Bhaskar, A. Das, T. Mandal, S. Mitra and R. Sharma, Fresh look at the LHC limits on scalar leptoquarks, Phys. Rev. D109 (2024) 055018, [2312.09855]
2024 arXiv
-
[61]
Cheung, T
K. Cheung, T. T. Q. Nguyen and C. J. Ouseph,Leptoquark search at the Forward Physics Facility, Phys. Rev. D108 (2023) 036014, [2302.05461]
2023 arXiv
-
[62]
Bhaskar, D
A. Bhaskar, D. Das, S. Kundu, A. A. Madathil, T. Mandal and S. Mitra,Vector leptoquark contributions to lepton dipole moments, Phys. Rev. D111 (2025) 015045, [2408.11798]
2025 arXiv
-
[63]
Bhaskar and M
A. Bhaskar and M. Mitra,Boosted top quark inspired leptoquark searches at the muon collider, 2409.15992
-
[64]
Bhaskar, Y
A. Bhaskar, Y. Chaurasia, A. Das, A. Kumar, T. Mandal, S. Mitra et al.,TooLQit: Leptoquark Models and Limits, 2412.19729
-
[65]
A. Das, T. Mandal, S. Mitra and R. Sharma,Fresh look at the LHC limits on vector leptoquarks, 2507.18295
-
[66]
ATLAScollaboration, Leptoquark summary plot for scalar or vector models, , CERN, Geneva, 2024
2024
-
[67]
CMS Exotica Summary plots for 13 TeV data: Leptoquark summary plot
“CMS Exotica Summary plots for 13 TeV data: Leptoquark summary plot.”https://twiki.cern.ch/twiki/pub/ CMSPublic/SummaryPlotsEXO13TeV/barplot_QE_QMU_ QTAU_QNU_2025March.pdf, 2025
2025
-
[68]
Di Luzio, A
L. Di Luzio, A. Greljo and M. Nardecchia,Gauge leptoquark as the origin of B-physics anomalies, Phys. Rev. D96 (2017) 115011, [1708.08450]
2017 arXiv
-
[69]
Calibbi, A
L. Calibbi, A. Crivellin and T. Li,Model of vector leptoquarks in view of theB-physics anomalies, Phys. Rev. D 98 (2018) 115002, [1709.00692]
2018 arXiv
-
[70]
Di Luzio, J
L. Di Luzio, J. Fuentes-Martin, A. Greljo, M. Nardecchia and S. Renner,Maximal Flavour Violation: a Cabibbo mechanism for leptoquarks, JHEP 11 (2018) 081, [1808.00942]
2018 arXiv
-
[71]
CMS collaboration, A. Tumasyan et al.,Search for pair-produced vector-like leptons in final states with third-generation leptons and at least three b quark jets in proton-proton collisions at√s = 13 TeV, Phys. Lett. B846 (2023) 137713, [2208.09700]
2023 arXiv
-
[72]
Bhardwaj, T
A. Bhardwaj, T. Mandal, S. Mitra and C. Neeraj,Roadmap to explore vectorlike quarks decaying to a new scalar or pseudoscalar, Phys. Rev. D106 (2022) 095014, [2203.13753]
2022 arXiv
-
[73]
Blümlein and E
J. Blümlein and E. Boos,Leptoquark production at high energye+e− colliders, Nucl. Phys. B Proc. Suppl.37 (1994) 181–192
1994
-
[74]
Blumlein, E
J. Blumlein, E. Boos and A. Kryukov,Leptoquark pair production in hadronic interactions, Z. Phys. C76 (1997) 137–153, [hep-ph/9610408]
1997 arXiv
-
[75]
Alloul, N
A. Alloul, N. D. Christensen, C. Degrande, C. Duhr and B. Fuks,FeynRules 2.0 - A complete toolbox for tree-level phenomenology, Comput. Phys. Commun.185 (2014) 2250–2300, [1310.1921]
2014 arXiv
-
[76]
Alwall, R
J. Alwall, R. Frederix, S. Frixione, V. Hirschi, F. Maltoni, O. Mattelaer et al.,The automated computation of tree-level and next-to-leading order differential cross sections, and their matching to parton shower simulations, JHEP 07 (2014) 079, [1405.0301]
2014 arXiv
-
[77]
NNPDF collaboration, R. D. Ball et al.,An open-source machine learning framework for global analyses of parton distributions, Eur. Phys. J. C81 (2021) 958, [2109.02671]
2021 arXiv
-
[78]
Kramer, T
M. Kramer, T. Plehn, M. Spira and P. M. Zerwas,Pair production of scalar leptoquarks at the CERN LHC, Phys. Rev. D71 (2005) 057503, [hep-ph/0411038]
2005 arXiv
-
[79]
Mandal, S
T. Mandal, S. Mitra and S. Seth,Pair Production of Scalar Leptoquarks at the LHC to NLO Parton Shower Accuracy, Phys. Rev. D93 (2016) 035018, [1506.07369]
2016 arXiv
-
[80]
Borschensky, B
C. Borschensky, B. Fuks, A. Kulesza and D. Schwartländer, Scalar leptoquark pair production at hadron colliders, Phys. Rev. D101 (2020) 115017, [2002.08971]
2020 arXiv
-
[81]
Borschensky, B
C. Borschensky, B. Fuks, A. Kulesza and D. Schwartländer, Scalar leptoquark pair production at the LHC: precision predictions in the era of flavour anomalies, JHEP 02 (2022) 157, [2108.11404]
2022 arXiv
-
[82]
Borschensky, B
C. Borschensky, B. Fuks, A. Jueid and A. Kulesza,Scalar leptoquarks at the LHC and flavour anomalies: a comparison of pair-production modes at NLO-QCD, JHEP 11 (2022) 006, [2207.02879]
2022 arXiv
-
[83]
Bierlich et al.,A comprehensive guide to the physics and usage of PYTHIA 8.3, SciPost Phys
C. Bierlich et al.,A comprehensive guide to the physics and usage of PYTHIA 8.3, SciPost Phys. Codeb.2022 (2022) 8, [2203.11601]. 13
2022 arXiv
-
[84]
de Favereau, C
DELPHES 3collaboration, J. de Favereau, C. Delaere, P. Demin, A. Giammanco, V. Lemaître, A. Mertens et al., DELPHES 3, A modular framework for fast simulation of a generic collider experiment, JHEP 02 (2014) 057, [1307.6346]
2014 arXiv
-
[85]
Cacciari, G
M. Cacciari, G. P. Salam and G. Soyez,FastJet User Manual, Eur. Phys. J. C72 (2012) 1896, [1111.6097]
2012 arXiv
-
[86]
Cacciari, G
M. Cacciari, G. P. Salam and G. Soyez,The anti-kt jet clustering algorithm, JHEP 04 (2008) 063, [0802.1189]
2008 arXiv
-
[87]
Catani, L
S. Catani, L. Cieri, G. Ferrera, D. de Florian and M. Grazzini,Vector boson production at hadron colliders: A fully exclusive qcd calculation at next-to-next-to-leading order, Phys. Rev. Lett.103 (Aug, 2009) 082001
2009
-
[88]
Balossini, G
G. Balossini, G. Montagna, C. M. Carloni Calame, M. Moretti, O. Nicrosini, F. Piccinini et al.,Combination of electroweak and qcd corrections to single w production at the fermilab tevatron and the cern lhc, Journal of High Energy Physics2010 (Jan., 2010)
2010
-
[89]
J. M. Campbell, R. K. Ellis and C. Williams,Vector boson pair production at the lhc, Journal of High Energy Physics 2011 (July, 2011)
2011
-
[90]
Kidonakis,Theoretical results for electroweak-boson and single-top production, PoSDIS2015 (2015) 170, [1506.04072]
N. Kidonakis,Theoretical results for electroweak-boson and single-top production, PoSDIS2015 (2015) 170, [1506.04072]
2015 arXiv
-
[91]
Muselli, M
C. Muselli, M. Bonvini, S. Forte, S. Marzani and G. Ridolfi, Top Quark Pair Production beyond NNLO, JHEP 08 (2015) 076, [1505.02006]
2015 arXiv
-
[92]
Kulesza, L
A. Kulesza, L. Motyka, D. Schwartländer, T. Stebel and V. Theeuwes,Associated production of a top quark pair with a heavy electroweak gauge boson at NLO+NNLL accuracy, Eur. Phys. J. C79 (2019) 249, [1812.08622]
2019 arXiv
-
[93]
Z. Kang, P. Ko and J. Li,New avenues to heavy right-handed neutrinos with pair production at hadronic colliders, Phys. Rev. D93 (Apr, 2016) 075037
2016
-
[94]
Accomando, L
E. Accomando, L. Delle Rose, S. Moretti, E. Olaiya and C. H. Shepherd-Themistocleous,Extra Higgs boson andZ′ as portals to signatures of heavy neutrinos at the LHC, JHEP 02 (2018) 109, [1708.03650]
2018 arXiv
-
[95]
J. C. Helo, H. Li, N. A. Neill, M. Ramsey-Musolf and J. C. Vasquez,Probing neutrino Dirac mass in left-right symmetric models at the LHC and next generation colliders, Phys. Rev. D99 (2019) 055042, [1812.01630]
2019 arXiv
-
[96]
Huitu, S
K. Huitu, S. Khalil, H. Okada and S. K. Rai,Signatures for right-handed neutrinos at the large hadron collider, Phys. Rev. Lett.101 (Oct, 2008) 181802
2008
-
[97]
Bhardwaj, P
A. Bhardwaj, P. Konar, T. Mandal and S. Sadhukhan, Probing the inert doublet model using jet substructure with a multivariate analysis, Phys. Rev. D100 (2019) 055040, [1905.04195]
2019 arXiv
-
[98]
Cowan, K
G. Cowan, K. Cranmer, E. Gross and O. Vitells,Asymptotic formulae for likelihood-based tests of new physics, Eur. Phys. J. C71 (2011) 1554, [1007.1727]. [Erratum: Eur.Phys.J.C 73, 2501 (2013)]. 14
2011 arXiv
Reviewed August 15, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.