REVIEW 3 major objections 4 minor 73 references
Searching for a light $Z'$ through Higgs production at the LHC
T0 review · 3 major / 4 minor · reviewed 2026-08-14 · deepseek-v4-flash
Pith's one-line read Four-lepton Higgs decays at the LHC can reveal a B-L Z' boson as light as 0.25 GeV.
desk verdict Solid recasting paper with a plausible low-mass B-L exclusion, but the 0.25 GeV headline limit leans on an efficiency transfer validated only at 1 GeV; deserves review with a request for public validation. 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 engine of the argument is the minimal $U(1)_{B-L}$ model: a Standard Model extension with one extra $U(1)$ gauge group under which quarks and leptons carry baryon-minus-lepton number, a singlet scalar $\chi$ whose vacuum expectation value gives the $Z'$ its mass $m_{Z'} = 2g_{B-L}\langle\chi\rangle$, and three right-handed neutrinos for anomaly cancellation and seesaw neutrino masses. The production mechanism that carries the result is the Higgs portal: mixing between the SM Higgs and $\chi$, parametrized by $\sin\alpha$, allows $pp\to h\to Z'Z'$ with a partial width proportional to $(g_{B-L}\sin\alpha/m_{Z'})^2$. The recasting is carried by the CMS $h\to 4\mu$ analysis's reported signal-model-independent detector efficiency of about 60%, which the authors use to extend the quoted 0.25--3.55 GeV limits up to 8.5 GeV, together with generator-level acceptance cuts on muon transverse momentum, pseudorapidity, and displacement $L_{xy}<9.8$ cm, $L_z<46.5$ cm.
What would settle it
Recalculate the CMS $h\to 4\mu$ selection with a full detector simulation for $pp\to h\to Z'Z'\to 4\mu$ with $m_{Z'}=0.25$ GeV, $g_{B-L}=10^{-5}$, and $\sin\alpha=0.3$, and compare the accepted signal yield with the efficiency-transfer prediction; if the yield is smaller than predicted by more than the quoted uncertainty, the $5\times 10^{-6}$ bound shifts. A simpler check would be a public table of generator-level acceptance times detector efficiency for the mass grid, since the paper gives none for the extension above 3.55 GeV.
Extended reading notes
Core claim
The central discovery is that Higgs-mediated production $pp\to h\to Z'Z'\to 4\mu$, not direct Drell-Yan production, is the channel that opens up light $Z'$ bosons at the LHC. Recasting the CMS $h\to 4\mu$ search with its model-independent limits, the authors find that the four-lepton final state is sensitive to $m_{Z'}$ as low as 0.25 GeV and, at $\sin\alpha = 0.3$, constrains $g_{B-L}$ to about $5\times 10^{-6}$; the limit weakens to $1.8\times 10^{-4}$ at $m_{Z'} = 8.5$ GeV. Because the $Z'$ is boosted in Higgs decays, it can be displaced in the lab even when its proper lifetime is short, and the CMS search's 9.8 cm transverse displacement cut lets the bound cover mean lab-frame decay lengths up to about 10 cm. The ATLAS four-lepton search gives stronger limits where it applies, but only for prompt decays and with gaps from QCD resonances; the CMS dimuon scouting search takes over above about 50 GeV, while the final-state-radiation channel is the weakest.
Load-bearing premise
The whole low-mass bound rests on the assumption that the detector efficiency reported by the CMS $h\to 4\mu$ analysis, found to be roughly signal-model independent, transfers unchanged to $B-L$ $Z'$ events at every mass used in the paper, including $m_{Z'}=0.25$ GeV and decays with muons displaced up to 9.8 cm.
Editorial extensions
If this is right
- Existing LHC Run 2 data, not future searches, already exclude a $B-L$ $Z'$ with $m_{Z'}$ around 0.25 GeV and coupling near $5\times 10^{-6}$, a region previously considered hard to reach.
- At the High-Luminosity LHC, the same four-lepton searches will push the coupling limits lower across 0.25--8.5 GeV, with the gain muted in the displaced region below roughly 0.5 GeV.
- The improved bounds nearly close the window for observable heavy-neutrino production through the $Z'$ or Higgs in this model: $pp\to Z'\to NN$ cross sections fall to at most a few femtobarns, and Higgs-mediated heavy-neutrino rates are suppressed by about three orders of magnitude relative to previously considered values.
- Because the Higgs-portal limits scale with $g_{B-L}\sin\alpha$, the result can be rescaled to any assumed mixing: for example, at $m_{Z'}=1$ GeV the coupling limit moves from $3\times 10^{-5}$ at $\sin\alpha=0.3$ to $5\times 10^{-5}$ at $\sin\alpha=0.2$.
Reading between the lines
- If the efficiency transfer holds, the same CMS $h\to 4\mu$ recasting should apply to any Higgs-coupled light gauge boson with a muonic decay, making the 0.25 GeV frontier a generic test of Higgs portals rather than a $B-L$-specific result.
- The analysis assumes zero kinetic mixing between $U(1)_{B-L}$ and hypercharge; opening that mixing would change both production and decay of the $Z'$ and would likely alter the low-mass limits, so the $5\times 10^{-6}$ bound should be read as specific to the minimal model.
- A dedicated search with a transverse displacement cut larger than the 9.8 cm used by CMS could push sensitivity below $g_{B-L}\sim 10^{-6}$ for $m_{Z'}<0.5$ GeV, where the paper shows the $Z'$ lifetime grows while the Higgs-mediated production cross section remains non-negligible.
- A future precise measurement of the Higgs mixing angle, for example at a lepton collider, would break the $\sin\alpha$--$g_{B-L}$ degeneracy and turn this combined search into a direct measurement of the gauge coupling.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper investigates the reach of existing ATLAS and CMS searches for a light Z' in the minimal U(1)_{B-L} model, concentrating on Z' pair-production via the SM Higgs (pp→h→Z'Z'→4l), Drell-Yan Z' production, and final-state radiation from Z→4μ. The authors recast the CMS h→4μ search [46], the ATLAS h→4l search [47], the CMS L_μ−L_τ FSR search [48], and the CMS dimuon scouting search [45] into the (m_Z', g_B-L) parameter space for a fixed Higgs mixing sinα = 0.3. The central claim is that the four-lepton final state is sensitive to m_Z' as low as 0.25 GeV, with the CMS h→4μ analysis excluding g_B-L down to about 5×10^-6 at that mass, an order-of-magnitude improvement in the 0.25–1 GeV region, and that the same search can probe displaced Z' decays with lab-frame lengths up to about 10 cm.
Significance. If the central claim holds, the paper provides a valuable recast that helps fill a gap in the low-mass Z' parameter space and demonstrates the utility of Higgs-mediated production for probing light gauge bosons. The analytical formulas in Eqs. (2.10), (3.1), (3.2), (4.3), and (4.4) are clearly stated, and the use of public experimental limits with explicit scenario choices (m_N = m_Z'/3, sinα = 0.3) is a strength. However, the headline sensitivity at m_Z' = 0.25 GeV relies on an unvalidated transfer of the CMS detector efficiency to a kinematically extreme region, which is the main risk to the result. The extension of the CMS mass reach beyond 3.55 GeV also lacks public validation.
major comments (3)
- [Sec. 4, CMS h→4μ paragraph] The reported validation of the generator-level acceptance α_gen is limited to a single sample at m_Z' = 1 GeV. The headline constraint g_B-L ≈ 5×10^-6 at m_Z' = 0.25 GeV (Sec. 5 and Fig. 8) is obtained by applying the CMS detector efficiency ε_detector ≈ 60% to a signal at that mass, where the Z' is ultra-boosted (βγ ~ 100) and the muons are highly collimated, and for small couplings the decays can be displaced with lab-frame length up to about 1 m. Because the limit scales as sqrt(1/ε), an efficiency of 30% instead of 60% would shift the 0.25 GeV bound from 5×10^-6 to about 7×10^-6, eroding the claimed order-of-magnitude improvement. This efficiency transfer is load-bearing and should be validated at the low-mass endpoint or treated with a conservative efficiency uncertainty.
- [Sec. 4, CMS h→4μ paragraph] The extension of the CMS h→4μ limits from the published mass range (0.25–3.55 GeV) to 8.5 GeV is a reimplementation using the cuts in Eqs. (4.1)–(4.2) and a single-bin background estimate of 9.90 ± 1.24_stat ± 1.84_syst events, rather than the model-independent upper limits reported by CMS. No public validation table is provided for this extension, so the limits displayed in Figs. 8 and 9 for m_Z' > 3.55 GeV rest on this unvalidated reimplementation. This is load-bearing for the claimed mass reach of the CMS h→4μ channel.
- [Sec. 5, discussion of Fig. 8] The statement that 'it is perfectly safe to use the analysis in this region' for the CMS h→4μ search in the displaced regime (m_Z' ≲ 0.5 GeV, g_B-L ≲ few×10^-6) is not supported by any validation of the efficiency transfer for decays with lab-frame displacement approaching the Lxy < 9.8 cm and Lz < 46.5 cm cuts. The CMS ε_detector ≈ 60% factor was demonstrated by the collaboration for its own benchmark samples and is not automatically universal for a B-L Z' with a different boost and decay-vertex distribution. This is particularly relevant for the HL-LHC projection, where the displaced region contributes to the sensitivity, and should be quantified before the long-lived sensitivity claim is made.
minor comments (4)
- [Sec. 6] The sentence 'The constraints from the ATLAS search [40] are somewhat stronger than the CMS search [58]' appears to refer to the wrong references; the h→4l searches are [47] and [46], while [40] and [58] are high-mass dilepton analyses. Please correct the citations.
- [Sec. 5] The phrase 'this analysis in not included' should read 'this analysis is not included'.
- [Sec. 2.1] The word 'Intheseesawlimit' is missing spaces and should be 'In the seesaw limit'.
- [Sec. 4, CMS h→4μ paragraph] The sentence 'We have however used the model-independent limits given in Ref. [46]' is slightly confusing because the preceding sentence describes a χ^2 background estimate; consider clarifying that the χ^2 estimate is only used for the HL-LHC projection and not for the current limits.
Circularity Check
No significant circularity: the paper's limits are obtained by comparing external CMS/ATLAS upper limits with independently computed B-L cross sections; self-citations are contextual rather than load-bearing.
full rationale
The derivation chain is self-contained against external data. The central exclusion curves in Figs. 7-9 follow from published CMS h->4mu [46], ATLAS h->4l [47], CMS FSR [48] and CMS dilepton [45] upper limits, compared with B-L signal cross sections computed from Eqs. (3.1)-(3.2) using standard NLO MadGraph/UFO inputs. No parameter of the result is fitted to the data being constrained: sin alpha=0.3 and mN=mZ'/3 are explicitly stated scenario choices, not derived from the excluded regions. The only efficiency input, epsilon_detector ~ 60%, is taken from the CMS collaboration's reported model-independence and checked by the authors at 1 GeV; whether this transfer holds at 0.25 GeV or for displaced decays is a validity/robustness concern about an external input, not circular reasoning. Author self-citations ([14], [51], [71]) provide tooling, model files, and context for heavy-neutrino comments; the constraints themselves are not justified by those citations. Thus no predicted quantity collapses by construction into an input.
Assumptions & free parameters
free parameters (3)
- sin alpha (Higgs mixing angle) =
0.3
- m_N / m_Z' =
1/3
- m_h_chi (exotic Higgs mass) =
set heavy/decoupled
assumptions (4)
- domain assumption Zero kinetic mixing between U(1)_{B-L} and U(1)_Y at the electroweak scale.
- domain assumption No Z-Z' mass mixing; SM fermions interact with the Z' only through g_B-L.
- domain assumption DarkCast scaling correctly accounts for nonperturbative QCD effects in Z' branching ratios below 1 GeV.
- domain assumption The exotic Higgs h_chi is heavy enough that only the SM-like Higgs contributes to Z' pair production.
Cite this review
Pith. "Pith review of Searching for a light $Z'$ through Higgs production at the LHC." pith.science (2026). https://pith.science/paper/6JZXHVNY
@misc{pith2026190811741,
author = {Pith},
title = {Pith review of: Searching for a light $Z'$ through Higgs production at the LHC},
year = {2026},
howpublished = {\url{https://pith.science/paper/6JZXHVNY}},
note = {Machine review of arXiv:1908.11741}
}
abstract
We investigate the potential of LHC resonance searches in leptonic final states to probe the $Z'$ in the minimal $U(1)_{B-L}$ model. Considering the current constraints on the $Z'$ in terms of its mass $m_{Z'}$ and the associated gauge coupling $g_{B-L}$ as well as constraints in the Higgs sector, we analyse the potential of dilepton and four lepton final states for $Z'$ production. This includes Drell-Yan production, Higgs mediated decays and final state radiation processes concentrating only on the ATLAS and CMS detectors at the LHC. We show that the four-lepton final state is sensitive to $m_{Z'}$ as low as 0.25 GeV. Furthermore, setting the Higgs mixing to $\sin\alpha = 0.3$, this final state has a strong sensitivity and it probes regions of parameter space where the $Z'$ is long-lived. We demonstrate the sensitivity at the High Luminosity LHC and comment on the potential of probing displaced vertices due to long-lived $Z'$. Finally, we also comment on the strength of $Z'$ and Higgs mediated heavy neutrino processes by taking into account the constraints derived.
Reference graph
Works this paper leans on
-
[46]
CMS collaboration, A. M. Sirunyan et al.,A search for pair production of new light bosons decaying into muons in proton-proton collisions at 13 TeV, Submitted to: Phys. Lett.(2018) , [1812.00380]. – 24 –
arXiv 2018
-
[47]
ATLAScollaboration, M. Aaboud et al.,Search for Higgs boson decays to beyond-the-Standard-Model light bosons in four-lepton events with the ATLAS detector at√s = 13 TeV, JHEP 06 (2018) 166, [1802.03388]
arXiv 2018
-
[48]
CMS collaboration, A. M. Sirunyan et al.,Search for anLµ−Lτ gauge boson using Z→ 4µ events in proton-proton collisions at√s = 13 TeV, Phys. Lett. B792 (2019) 345–368, [1808.03684]
arXiv 2019
-
[45]
CMS Collaboration collaboration, C. collaboration,Search for a narrow resonance decaying to a pair of muons in proton-proton collisions at 13 TeV, Tech. Rep. CMS-PAS-EXO-19-018, CERN, Geneva, 2019
work page 2019
-
[1]
R. N. Mohapatra and J. W. F. Valle,Neutrino Mass and Baryon Number Nonconservation in Superstring Models, Phys. Rev. D34 (1986) 1642
1986
-
[2]
A. Davidson,B−l as the Fourth Color, Quark - Lepton Correspondence, and Natural Masslessness of Neutrinos Within a Generalized Ws Model, Phys. Rev. D20 (1979) 776
work page 1979
-
[3]
R. N. Mohapatra and R. E. Marshak,Local B-L Symmetry of Electroweak Interactions, Majorana Neutrinos and Neutron Oscillations, Phys. Rev. Lett.44 (1980) 1316–1319
work page 1980
-
[4]
ATLAScollaboration, M. Aaboud et al.,Search for new high-mass phenomena in the dilepton final state using 36 fb−1 of proton-proton collision data at√s = 13 TeV with the ATLAS detector, JHEP 10 (2017) 182, [1707.02424]
arXiv 2017
Show all 73 references
-
[5]
SLD Electroweak Group, SLD Hea vy Fla vor Group, DELPHI, LEP, ALEPH, OPAL, LEP Electroweak Working Group, L3 collaboration, t. S. Electroweak,A Combination of preliminary electroweak measurements and constraints on the standard model, hep-ex/0312023
-
[6]
SLAC E158 collaboration, P. L. Anthony et al.,Observation of parity nonconservation in Moller scattering, Phys. Rev. Lett.92 (2004) 181602, [hep-ex/0312035]
2004 arXiv
-
[7]
Carena, A
M. Carena, A. Daleo, B. A. Dobrescu and T. M. P. Tait,Z′ gauge bosons at the Tevatron, Phys. Rev. D70 (2004) 093009, [hep-ph/0408098]
2004 arXiv
-
[8]
Cacciapaglia, C
G. Cacciapaglia, C. Csaki, G. Marandella and A. Strumia,The Minimal Set of Electroweak Precision Parameters, Phys. Rev. D74 (2006) 033011, [hep-ph/0604111]
2006 arXiv
-
[9]
Harnik, J
R. Harnik, J. Kopp and P. A. N. Machado,Exploring nu Signals in Dark Matter Detectors, JCAP 1207 (2012) 026, [1202.6073]
2012 arXiv
-
[10]
Bellini et al.,Precision measurement of the 7Be solar neutrino interaction rate in Borexino, Phys
G. Bellini et al.,Precision measurement of the 7Be solar neutrino interaction rate in Borexino, Phys. Rev. Lett.107 (2011) 141302, [1104.1816]
2011 arXiv
-
[11]
Bauer, P
M. Bauer, P. Foldenauer and J. Jaeckel,Hunting All the Hidden Photons, JHEP 07 (2018) 094, [1803.05466]
2018 arXiv
-
[12]
Vilain et al.,Measurement of differential cross-sections for muon-neutrino electron scattering, Phys
CHARM-II collaboration, P. Vilain et al.,Measurement of differential cross-sections for muon-neutrino electron scattering, Phys. Lett. B302 (1993) 351–355. – 22 –
1993
-
[13]
Deniz et al.,Measurement of Nu(e)-bar -Electron Scattering Cross-Section with a CsI(Tl) Scintillating Crystal Array at the Kuo-Sheng Nuclear Power Reactor, Phys
TEXONO collaboration, M. Deniz et al.,Measurement of Nu(e)-bar -Electron Scattering Cross-Section with a CsI(Tl) Scintillating Crystal Array at the Kuo-Sheng Nuclear Power Reactor, Phys. Rev. D81 (2010) 072001, [0911.1597]
2010 arXiv
-
[14]
Amrith, J
S. Amrith, J. M. Butterworth, F. F. Deppisch, W. Liu, A. Varma and D. Yallup,LHC Constraints on aB−L Gauge Model using Contur, 1811.11452
-
[15]
J. M. Butterworth, D. Grellscheid, M. Kr¨amer, B. Sarrazin and D. Yallup,Constraining new physics with collider measurements of Standard Model signatures, JHEP 03 (2017) 078, [1606.05296]
2017 arXiv
-
[16]
Ilten, Y
P. Ilten, Y. Soreq, M. Williams and W. Xue,Serendipity in dark photon searches, JHEP 06 (2018) 004, [1801.04847]
2018 arXiv
-
[17]
Aaij et al.,Search for Dark Photons Produced in 13 TeVpp Collisions, Phys
LHCb collaboration, R. Aaij et al.,Search for Dark Photons Produced in 13 TeVpp Collisions, Phys. Rev. Lett.120 (2018) 061801, [1710.02867]
2018 arXiv
-
[18]
Bechtle, S
P. Bechtle, S. Heinemeyer, O. Stal, T. Stefaniak and G. Weiglein,HiggsSignals : Confronting arbitrary Higgs sectors with measurements at the Tevatron and the LHC, Eur. Phys. J. C74 (2014) 2711, [1305.1933]
2014 arXiv
-
[19]
Ilnicka, T
A. Ilnicka, T. Robens and T. Stefaniak,Constraining Extended Scalar Sectors at the LHC and beyond, Mod. Phys. Lett.A33 (2018) 1830007, [1803.03594]
2018 arXiv
-
[20]
Bechtle, S
P. Bechtle, S. Heinemeyer, O. Stal, T. Stefaniak and G. Weiglein,Probing the Standard Model with Higgs signal rates from the Tevatron, the LHC and a future ILC, JHEP 11 (2014) 039, [1403.1582]
2014 arXiv
-
[21]
ATLAScollaboration, Measurements of the Higgs boson production cross section via Vector Boson Fusion and associatedWH production in theWW∗→𝓁ν𝓁ν decay mode with the ATLAS detector at√s = 13 TeV,
-
[22]
ATLAScollaboration, Study of the Higgs boson properties and search for high-mass scalar resonances in theH→ZZ∗→ 4𝓁 decay channel at√s = 13 TeV with the ATLAS detector,
-
[23]
ATLAScollaboration, Search for the Standard Model Higgs boson produced in association with a vector boson and decaying to ab¯b pair inpp collisions at 13 TeV using the ATLAS detector,
-
[24]
ATLAScollaboration, Search for the Standard Model Higgs boson produced in association with top quarks and decaying intobb in pp collisions at√s = 13 TeV with the ATLAS detector,
-
[25]
ATLAScollaboration, Measurement of fiducial, differential and production cross sections in the H→γγ decay channel with 13.3 fb−1 of 13 TeV proton-proton collision data with the ATLAS detector,
-
[26]
ATLAScollaboration, Search for the Associated Production of a Higgs Boson and a Top Quark Pair in Multilepton Final States with the ATLAS Detector,
-
[27]
CMS collaboration, A. M. Sirunyan et al.,Measurements of properties of the Higgs boson decaying into the four-lepton final state in pp collisions at√s = 13 TeV, JHEP 11 (2017) 047, [1706.09936]
2017 arXiv
-
[28]
CMS collaboration, Updated measurements of Higgs boson production in the diphoton decay channel at√s = 13 TeV in pp collisions at CMS., . – 23 –
-
[29]
CMS collaboration, Combination of standard model Higgs boson searches and measurements of the properties of the new boson with a mass near 125 GeV,
-
[30]
CMS collaboration, Update on the search for the standard model Higgs boson in pp collisions at the LHC decaying to W + W in the fully leptonic final state,
-
[31]
Khachatryan et al.,Search for a Higgs boson in the mass range from 145 to 1000 GeV decaying to a pair of W or Z bosons, JHEP 10 (2015) 144, [1504.00936]
CMS collaboration, V. Khachatryan et al.,Search for a Higgs boson in the mass range from 145 to 1000 GeV decaying to a pair of W or Z bosons, JHEP 10 (2015) 144, [1504.00936]
2015 arXiv
-
[32]
Collaboration,Search for a new scalar resonance decaying to a pair of Z bosons in proton-proton collisions at√s = 13 TeV,
CMS collaboration, C. Collaboration,Search for a new scalar resonance decaying to a pair of Z bosons in proton-proton collisions at√s = 13 TeV,
-
[33]
Aaboud et al.,Search for heavy ZZ resonances in the𝓁+𝓁−𝓁+𝓁− and 𝓁+𝓁−ν¯ν final states using proton–proton collisions at√s = 13 TeV with the ATLAS detector, Eur
ATLAScollaboration, M. Aaboud et al.,Search for heavy ZZ resonances in the𝓁+𝓁−𝓁+𝓁− and 𝓁+𝓁−ν¯ν final states using proton–proton collisions at√s = 13 TeV with the ATLAS detector, Eur. Phys. J.C78 (2018) 293, [1712.06386]
2018 arXiv
-
[34]
Lopez-Val and T
D. Lopez-Val and T. Robens,∆r and the W-boson mass in the singlet extension of the standard model, Phys. Rev. D90 (2014) 114018, [1406.1043]
2014 arXiv
-
[35]
Robens and T
T. Robens and T. Stefaniak,Status of the Higgs Singlet Extension of the Standard Model after LHC Run 1, Eur. Phys. J.C75 (2015) 104, [1501.02234]
2015 arXiv
-
[36]
D’Eramo, B
F. D’Eramo, B. J. Kavanagh and P. Panci,Probing Leptophilic Dark Sectors with Hadronic Processes, Phys. Lett. B771 (2017) 339–348, [1702.00016]
2017 arXiv
-
[37]
Anastasi et al.,Limit on the production of a low-mass vector boson ine+e−→ Uγ, U→ e+e− with the KLOE experiment, Phys
A. Anastasi et al.,Limit on the production of a low-mass vector boson ine+e−→ Uγ, U→ e+e− with the KLOE experiment, Phys. Lett. B750 (2015) 633–637, [1509.00740]
2015 arXiv
-
[38]
BaBar collaboration, J. P. Lees et al.,Search for a Dark Photon ine+e− Collisions at BaBar, Phys. Rev. Lett.113 (2014) 201801, [1406.2980]
2014 arXiv
-
[39]
CMS collaboration, A. M. Sirunyan et al.,Search for high-mass resonances in dilepton final states in proton-proton collisions at√s = 13 TeV, JHEP 06 (2018) 120, [1803.06292]
2018 arXiv
-
[40]
Aad et al.,Search for high-mass dilepton resonances using 139 fb−1 of pp collision data collected at√s =13 TeV with the ATLAS detector, Phys
ATLAScollaboration, G. Aad et al.,Search for high-mass dilepton resonances using 139 fb−1 of pp collision data collected at√s =13 TeV with the ATLAS detector, Phys. Lett. B796 (2019) 68–87, [1903.06248]
2019 arXiv
-
[41]
CMS collaboration, A. M. Sirunyan et al.,Search for low-mass quark-antiquark resonances produced in association with a photon at√s = 13 TeV, 1905.10331
1905 arXiv
-
[42]
J. Gu, H. Li, Z. Liu, S. Su and W. Su,Learning from Higgs Physics at Future Higgs Factories, JHEP 12 (2017) 153, [1709.06103]
2017 arXiv
-
[43]
Dong et al.,CEPC Conceptual Design Report: Volume 2 - Physics & Detector, 1811.10545
CEPC Study Group collaboration, M. Dong et al.,CEPC Conceptual Design Report: Volume 2 - Physics & Detector, 1811.10545
-
[44]
Fujiwara, T
T. Fujiwara, T. Kugo, H. Terao, S. Uehara and K. Yamawaki,Nonabelian Anomaly and Vector Mesons as Dynamical Gauge Bosons of Hidden Local Symmetries, Prog. Theor. Phys. 73 (1985) 926
1985
-
[49]
de Florian et al., Handbook of LHC Higgs Cross Sections: 4
LHC Higgs Cross Section Working Group collaboration, D. de Florian et al., Handbook of LHC Higgs Cross Sections: 4. Deciphering the Nature of the Higgs Sector, 1610.07922
-
[50]
Tanabashi et al.,Review of Particle Physics, Phys
Particle Data Group collaboration, M. Tanabashi et al.,Review of Particle Physics, Phys. Rev. D98 (2018) 030001
2018
-
[51]
F. F. Deppisch, W. Liu and M. Mitra,Long-lived Heavy Neutrinos from Higgs Decays, JHEP 08 (2018) 181, [1804.04075]
2018 arXiv
-
[52]
Degrande, C
C. Degrande, C. Duhr, B. Fuks, D. Grellscheid, O. Mattelaer and T. Reiter,UFO - The Universal FeynRules Output, Comput. Phys. Commun.183 (2012) 1201–1214, [1108.2040]
2012 arXiv
-
[53]
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
-
[54]
Sj¨ostrand, S
T. Sj¨ostrand, S. Ask, J. R. Christiansen, R. Corke, N. Desai, P. Ilten et al.,An Introduction to PYTHIA 8.2, Comput. Phys. Commun.191 (2015) 159–177, [1410.3012]
2015 arXiv
-
[55]
Aad et al.,A search for prompt lepton-jets inpp collisions at√s = 8 TeV with the ATLAS detector, JHEP 02 (2016) 062, [1511.05542]
ATLAScollaboration, G. Aad et al.,A search for prompt lepton-jets inpp collisions at√s = 8 TeV with the ATLAS detector, JHEP 02 (2016) 062, [1511.05542]
2016 arXiv
-
[56]
Aad et al.,Search for long-lived neutral particles decaying into lepton jets in proton-proton collisions at√s = 8 TeV with the ATLAS detector, JHEP 11 (2014) 088, [1409.0746]
ATLAScollaboration, G. Aad et al.,Search for long-lived neutral particles decaying into lepton jets in proton-proton collisions at√s = 8 TeV with the ATLAS detector, JHEP 11 (2014) 088, [1409.0746]
2014 arXiv
-
[57]
ATLAScollaboration, G. Aad et al.,Search for light long-lived neutral particles produced in pp collisions at√s = 13 TeV and decaying into collimated leptons or light hadrons with the ATLAS detector, 1909.01246
1909 arXiv
-
[58]
CMS Collaboration collaboration, Search for a narrow resonance in high-mass dilepton final states in proton-proton collisions using 140fb−1 of data at√s = 13 TeV, Tech. Rep. CMS-PAS-EXO-19-019, CERN, Geneva, 2019
2019
-
[59]
Khalil,Low scaleB - L extension of the Standard Model at the LHC, J
S. Khalil,Low scaleB - L extension of the Standard Model at the LHC, J. Phys. G35 (2008) 055001, [hep-ph/0611205]
2008 arXiv
-
[60]
Khalil,TeV-scale gauged B-L symmetry with inverse seesaw mechanism, Phys
S. Khalil,TeV-scale gauged B-L symmetry with inverse seesaw mechanism, Phys. Rev. D82 (2010) 077702, [1004.0013]
2010 arXiv
-
[61]
C. O. Dib, G. R. Moreno and N. A. Neill,Neutrinos with a linear seesaw mechanism in a scenario of gauged B-L symmetry, Phys. Rev. D90 (2014) 113003, [1409.1868]
2014 arXiv
-
[62]
A. Das, N. Okada and D. Raut,Enhanced pair production of heavy Majorana neutrinos at the LHC, Phys. Rev. D97 (2018) 115023, [1710.03377]
2018 arXiv
-
[63]
A. Das, N. Okada and D. Raut,Heavy Majorana neutrino pair productions at the LHC in minimal U(1) extended Standard Model, Eur. Phys. J.C78 (2018) 696, [1711.09896]. – 25 –
2018 arXiv
-
[64]
E. J. Chun, A. Das, J. Kim and J. Kim,Searching for flavored gauge bosons, JHEP 02 (2019) 093, [1811.04320]
2019 arXiv
-
[65]
A. Das, N. Okada, S. Okada and D. Raut,Probing the seesaw mechanism at the 250 GeV ILC, 1812.11931
-
[66]
S. Jana, N. Okada and D. Raut,Displaced vertex signature of type-I seesaw model, Phys. Rev. D98 (2018) 035023, [1804.06828]
2018 arXiv
-
[67]
Klasen, F
M. Klasen, F. Lyonnet and F. S. Queiroz,NLO+NLL collider bounds, Dirac fermion and scalar dark matter in the B–L model, Eur. Phys. J.C77 (2017) 348, [1607.06468]
2017 arXiv
-
[68]
Fileviez Pérez, C
P. Fileviez Pérez, C. Murgui and A. D. Plascencia,Neutrino-Dark Matter Connections in Gauge Theories, Phys. Rev. D100 (2019) 035041, [1905.06344]
2019 arXiv
-
[69]
Heeba and F
S. Heeba and F. Kahlhoefer,Probing the freeze-in mechanism in dark matter models with U(1)′ gauge extensions, 1908.09834
1908 arXiv
-
[70]
R. N. Mohapatra and N. Okada,Dark Matter Constraints on Low Mass and Weakly Coupled B-L Gauge Boson, 1908.11325
1908 arXiv
-
[71]
Deppisch, S
F. Deppisch, S. Kulkarni and W. Liu,Heavy neutrino production viaZ′ at the lifetime frontier, Phys. Rev. D100 (2019) 035005, [1905.11889]
2019 arXiv
-
[72]
A. Das, P. S. B. Dev and N. Okada,Long-Lived TeV-Scale Right-Handed Neutrino Production at the LHC in GaugedU(1)X Model, 1906.04132
1906 arXiv
-
[73]
Chiang, G
C.-W. Chiang, G. Cottin, A. Das and S. Mandal,Displaced heavy neutrinos fromZ′ decays at the LHC, 1908.09838. – 26 –
1908 arXiv
Reviewed August 14, 2026 · model on record in the stance chip above.
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