Complementary probes of Bilinear RPV SUSY models with a wino-like LSP via Neutrino Oscillation and LHC
Pith reviewed 2026-06-25 20:02 UTC · model grok-4.3
The pith
In bilinear RPV SUSY, wino-like charginos and neutralinos are excluded up to 565 GeV by LHC Run II when their Z l branching ratio is 23 percent at the best-fit point from neutrino data.
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The central discovery is that the branching ratio Br(χ̃1± → Z l±) ∼ 23% obtained at the best-fit point from the MCMC scan allows current LHC Run-II data to exclude wino-like mass-degenerate χ̃1±/χ̃10 up to 565 GeV, with the High-Luminosity LHC projected to reach around 950 GeV for the same branching ratio. In simplified scenarios the exclusion limits are approximately 600 GeV, 1185 GeV, and 1350 GeV for branching ratios of 1%, 50%, and 100% respectively. The analysis demonstrates that the HL-LHC can probe a significant portion of the parameter space still allowed at 1σ by neutrino oscillation data and other constraints.
What carries the argument
Markov Chain Monte Carlo scan of the bilinear R-parity violating SUSY parameter space, with the chargino branching ratio to Z plus lepton serving as the link to LHC trilepton resonance searches.
If this is right
- The branching ratios for decays to different neutrino and charged lepton flavors depend on the neutrino mass hierarchy.
- Current LHC data excludes a substantial part of the parameter space consistent with neutrino oscillation data.
- The High-Luminosity LHC is projected to cover most of the remaining 1σ allowed region for the best-fit branching ratio.
- Simplified models show that the exclusion reach increases with higher assumed branching ratios to the Z l final state.
Where Pith is reading between the lines
- Refining the neutrino mass hierarchy measurement could narrow the predicted branching ratios and strengthen future collider limits.
- Similar combined analyses could be performed for other supersymmetry scenarios with R-parity violation to map out their collider signatures.
- If the wino mass scale remains unconstrained after HL-LHC, it would impact the viability of natural supersymmetry models.
Load-bearing premise
The MCMC scan has converged on parameter regions where the best-fit branching ratio can be applied uniformly to set LHC limits without large variations in the 1σ region.
What would settle it
Detection of a wino-like chargino with mass above 565 GeV decaying to Z plus lepton with a branching ratio near 23 percent, or a measured branching ratio from future data that conflicts with the value required to fit neutrino oscillation results.
read the original abstract
In this work, we explore the bilinear R-parity violating Supersymmetry model's parameter space by performing a Markov Chain Monte Carlo scan with neutrino oscillation data, Higgs mass and its coupling strengths, and flavor observables such as $B$-hadron decay branching ratios. From the allowed parameter space, we analyze the decay patterns of wino-like lighter charginos and lightest neutralinos and demonstrate how the branching ratios to different neutrino and charged lepton flavors depend on the neutrino mass hierarchy. Furthermore, we investigate the impact of current LHC bounds and projected future sensitivities from trilepton resonance searches on the allowed parameter space. We show that considering the branching ratio $\mathrm{Br}(\widetilde{\chi}_1^{\pm} \to Zl^\pm; l= e,\mu,\tau) \sim$23\%, obtained at the best-fit point, the wino-like mass degenerate $\widetilde{\chi}_1^{\pm}/\widetilde{\chi}_1^0$ are excluded upto 565 GeV from LHC Run-II data. The projected exclusion reach with a similar branching ratio at High-Luminosity LHC (HL-LHC) is around 950 GeV. For a simplified scenario where $\widetilde{\chi}_1^{\pm} / \widetilde{\chi}_1^0$ decays via a $Z$ boson with branching ratios of 1\%, 50\%, and 100\%, wino masses can be excluded up to approximately $600~\mathrm{GeV}$, $1185~\mathrm{GeV}$, and $1350~\mathrm{GeV}$ respectively. Our analysis shows that the HL-LHC can probe a significant portion of the 1$\sigma$ allowed parameter space by neutrino oscillation measurements and other experimental constraints.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper performs a Markov Chain Monte Carlo scan of bilinear R-parity violating supersymmetry with a wino-like LSP, subject to neutrino oscillation data, Higgs mass and couplings, and B-hadron flavor observables. From the resulting allowed parameter space it extracts chargino and neutralino decay branching ratios (showing dependence on neutrino mass hierarchy) and recasts LHC trilepton resonance searches using the best-fit value Br(χ̃1± → Zl±; l=e,μ,τ)∼23% to claim Run-II exclusion of the wino-like states up to 565 GeV and a projected HL-LHC reach of 950 GeV. Simplified scenarios with fixed branching ratios of 1%, 50% and 100% are also presented.
Significance. If the MCMC posterior is adequately sampled and the quoted branching ratio is representative of the 1σ region, the work supplies a concrete link between neutrino data and collider limits on RPV SUSY, extending existing wino-mass bounds in a well-motivated corner of parameter space. The explicit use of external neutrino and LHC data without circular fitting is a positive feature.
major comments (1)
- [Abstract and LHC recast section] Abstract and the LHC-limits paragraph: the headline exclusions (565 GeV Run-II, 950 GeV HL-LHC) are obtained by inserting the single best-fit branching ratio Br(χ̃1± → Zl±)∼23% into published trilepton limits. No distribution or 1σ range of this branching ratio is reported across the MCMC posterior. Because the same RPV parameters that set the neutrino mixing angles also enter the chargino decay matrix elements, the branching ratio can vary inside the allowed region; without a demonstration that the variation is small, the fixed-Br recast does not map onto the full 1σ parameter space.
minor comments (2)
- [Abstract] The abstract states that the scan incorporates 'Higgs mass and its coupling strengths' but does not specify which Higgs observables (signal strengths, total width, etc.) are used or how they are implemented in the likelihood.
- [Throughout] Notation for the wino-like states alternates between χ̃1±/χ̃10 and χ̃1±/χ̃1^0; a single consistent symbol set would improve readability.
Simulated Author's Rebuttal
We thank the referee for the careful reading of the manuscript and the constructive comment on the LHC recast section. We address the major comment below and will revise the manuscript accordingly.
read point-by-point responses
-
Referee: [Abstract and LHC recast section] Abstract and the LHC-limits paragraph: the headline exclusions (565 GeV Run-II, 950 GeV HL-LHC) are obtained by inserting the single best-fit branching ratio Br(χ̃1± → Zl±)∼23% into published trilepton limits. No distribution or 1σ range of this branching ratio is reported across the MCMC posterior. Because the same RPV parameters that set the neutrino mixing angles also enter the chargino decay matrix elements, the branching ratio can vary inside the allowed region; without a demonstration that the variation is small, the fixed-Br recast does not map onto the full 1σ parameter space.
Authors: We agree with the referee that the branching ratio Br(χ̃1± → Zl±) can in principle vary within the 1σ MCMC posterior because the RPV parameters enter both the neutrino mixing and the decay matrix elements. The current manuscript reports only the value at the best-fit point and does not display the distribution or range across the allowed region. In the revised version we will add a new figure (or table) showing the distribution of this branching ratio for all points inside the 1σ contour. This will quantify the variation and justify the use of the best-fit value (~23%) for the headline exclusions. We will also update the abstract and the relevant LHC-limits paragraph to reference the new distribution and note that the quoted reach applies to the representative best-fit point while the simplified 1%/50%/100% scenarios bracket the possible variation. revision: yes
Circularity Check
No circularity; derivation uses external neutrino/Higgs/flavor constraints and published LHC bounds
full rationale
The paper runs an MCMC scan whose inputs are neutrino oscillation data, Higgs mass/couplings, and B-decay observables. From the resulting allowed region it extracts branching ratios at the best-fit point and inserts those fixed values into external trilepton resonance limits to obtain mass exclusions. No equation or step equates the LHC exclusion reach to a quantity defined from the same LHC data; no self-citation supplies a load-bearing uniqueness theorem; the branching ratio is computed from the scan rather than fitted to the target exclusion. The chain therefore remains independent of its final output.
Axiom & Free-Parameter Ledger
Reference graph
Works this paper leans on
-
[1]
Weinberg,A model of leptons,Phys
S. Weinberg,A model of leptons,Phys. Rev. Lett.19(Nov, 1967) 1264–1266
1967
-
[2]
Salam,Weak and Electromagnetic Interactions,Conf
A. Salam,Weak and Electromagnetic Interactions,Conf. Proc. C680519(1968) 367–377
1968
-
[3]
Gell-Mann,A schematic model of baryons and mesons,Physics Letters8(1964) 214–215
M. Gell-Mann,A schematic model of baryons and mesons,Physics Letters8(1964) 214–215
1964
-
[4]
M. Drees, R. Godbole and P. Roy,Theory and Phenomenology of Sparticles: An Account of Four-Dimensional N =1 Supersymmetry in High Energy Physics. 01, 2005, 10.1142/4001
-
[5]
Baer and X
H. Baer and X. Tata,Weak scale supersymmetry: From superfields to scattering events. Cambridge University Press, 5, 2006
2006
-
[6]
S. P. Martin,A Supersymmetry primer,Adv. Ser. Direct. High Energy Phys.18 (1998) 1–98, [hep-ph/9709356]
Pith/arXiv arXiv 1998
-
[7]
Susskind,The gauge hierarchy problem, technicolor, supersymmetry, and all that,Physics Reports104(1984) 181–193
L. Susskind,The gauge hierarchy problem, technicolor, supersymmetry, and all that,Physics Reports104(1984) 181–193
1984
-
[8]
Gildener,Gauge-symmetry hierarchies,Phys
E. Gildener,Gauge-symmetry hierarchies,Phys. Rev. D14(Sep, 1976) 1667–1672
1976
-
[9]
Ellis, S
J. Ellis, S. Kelley and D. Nanopoulos,Precision lep data, supersymmetric guts and string unification,Physics Letters B249(1990) 441–448
1990
-
[10]
Amaldi, W
U. Amaldi, W. de Boer and H. F¨ urstenau,Comparison of grand unified theories with electroweak and strong coupling constants measured at lep,Physics Letters B 260(1991) 447–455
1991
-
[11]
Ross and R
G. Ross and R. Roberts,Minimal supersymmetric unification predictions,Nuclear Physics B377(1992) 571–592
1992
-
[12]
Zwicky,Die Rotverschiebung von extragalaktischen Nebeln,Helv
F. Zwicky,Die Rotverschiebung von extragalaktischen Nebeln,Helv. Phys. Acta6 (1933) 110–127
1933
-
[13]
Zwicky,On the Masses of Nebulae and of Clusters of Nebulae,apj86(Oct.,
F. Zwicky,On the Masses of Nebulae and of Clusters of Nebulae,apj86(Oct.,
-
[14]
Y. Sofue and V. Rubin,Rotation curves of spiral galaxies,Ann. Rev. Astron. Astrophys.39(2001) 137–174, [astro-ph/0010594]
Pith/arXiv arXiv 2001
-
[15]
G. Jungman, M. Kamionkowski and K. Griest,Supersymmetric dark matter,Phys. Rept.267(1996) 195–373, [hep-ph/9506380]
Pith/arXiv arXiv 1996
-
[16]
H. K. Dreiner,An Introduction to explicit R-parity violation,Adv. Ser. Direct. High Energy Phys.21(2010) 565–583, [hep-ph/9707435]
Pith/arXiv arXiv 2010
-
[17]
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]
Pith/arXiv arXiv 2005
-
[18]
A. Choudhury, A. Mondal and S. Mondal,Status of R-parity violating SUSY,Eur. Phys. J. Spec. Top.233(2024) 2187–2208, [2402.04040]. – 20 –
arXiv 2024
-
[19]
T. Banks, Y. Grossman, E. Nardi and Y. Nir,Supersymmetry without R-parity and without lepton number,Phys. Rev. D52(1995) 5319–5325, [hep-ph/9505248]
Pith/arXiv arXiv 1995
-
[20]
Y. Grossman and H. E. Haber,(S)neutrino properties in R-parity violating supersymmetry. 1. CP conserving phenomena,Phys. Rev. D59(1999) 093008, [hep-ph/9810536]
Pith/arXiv arXiv 1999
-
[21]
S. Davidson and M. Losada,Neutrino masses in the R(p) violating MSSM,JHEP 05(2000) 021, [hep-ph/0005080]
Pith/arXiv arXiv 2000
-
[22]
S. Davidson and M. Losada,Basis independent neutrino masses in the R(p) violating MSSM,Phys. Rev. D65(2002) 075025, [hep-ph/0010325]
Pith/arXiv arXiv 2002
-
[23]
F. Borzumati, Y. Grossman, E. Nardi and Y. Nir,Neutrino masses and mixing in supersymmetric models without R parity,Phys. Lett. B384(1996) 123–130, [hep-ph/9606251]
Pith/arXiv arXiv 1996
-
[24]
B. Mukhopadhyaya, S. Roy and F. Vissani,Correlation between neutrino oscillations and collider signals of supersymmetry in an R-parity violating model, Phys. Lett. B443(1998) 191–195, [hep-ph/9808265]
Pith/arXiv arXiv 1998
-
[25]
Rakshit, G
S. Rakshit, G. Bhattacharyya and A. Raychaudhuri,r-parity-violating trilinear couplings and recent neutrino data,Phys. Rev. D59(Mar, 1999) 091701
1999
-
[26]
Datta, B
A. Datta, B. Mukhopadhyaya and S. Roy,Constraining an r-parity violating supersymmetric theory from the superkamiokande data on atmospheric neutrinos, Phys. Rev. D61(Feb, 2000) 055006
2000
-
[27]
B. C. Allanach and C. H. Kom,Lepton number violating mSUGRA and neutrino masses,JHEP04(2008) 081, [0712.0852]
Pith/arXiv arXiv 2008
-
[28]
B. C. Allanach, C. H. Kom and M. Hanussek,Computation of Neutrino Masses in R-parity Violating Supersymmetry: SOFTSUSY3.2,Comput. Phys. Commun.183 (2012) 785–793, [1109.3735]
Pith/arXiv arXiv 2012
-
[29]
Y. Grossman and H. E. Haber,Sneutrino mixing phenomena,Phys. Rev. Lett.78 (1997) 3438–3441, [hep-ph/9702421]
Pith/arXiv arXiv 1997
-
[30]
H. K. Dreiner and G. G. Ross,R-parity violation at hadron colliders,Nucl. Phys. B 365(1991) 597–613
1991
-
[31]
D. Dercks, H. Dreiner, M. E. Krauss, T. Opferkuch and A. Reinert,R-Parity Violation at the LHC,Eur. Phys. J. C77(2017) 856, [1706.09418]
Pith/arXiv arXiv 2017
-
[32]
R. Bose, A. Datta, A. Kundu and S. Poddar,LHC signatures of neutrino mass generation through R-parity violation,Phys. Rev. D90(2014) 035007, [1405.1282]
Pith/arXiv arXiv 2014
-
[33]
A. Datta and S. Poddar,Probing R-parity violating models of neutrino mass at the LHC via top squark decays,Phys. Rev. D79(2009) 075021, [0901.1619]
Pith/arXiv arXiv 2009
-
[34]
S. P. Das, A. Datta and S. Poddar,Top squark and neutralino decays in a R-parity violating model constrained by neutrino oscillation data,Phys. Rev. D73(2006) 075014, [hep-ph/0509171]. – 21 –
Pith/arXiv arXiv 2006
-
[35]
V. A. Mitsou,R-parity violating supersymmetry and neutrino physics: experimental signatures,PoSPLANCK2015(2015) 085, [1510.02660]
Pith/arXiv arXiv 2015
- [36]
-
[37]
Weinberg,Baryon and Lepton Nonconserving Processes,Phys
S. Weinberg,Baryon and Lepton Nonconserving Processes,Phys. Rev. Lett.43 (1979) 1566–1570
1979
-
[38]
Weinberg,Varieties of Baryon and Lepton Nonconservation,Phys
S. Weinberg,Varieties of Baryon and Lepton Nonconservation,Phys. Rev. D22 (1980) 1694
1980
-
[39]
Minkowski,µ→eγat a Rate of One Out of10 9 Muon Decays?,Phys
P. Minkowski,µ→eγat a Rate of One Out of10 9 Muon Decays?,Phys. Lett. B 67(1977) 421–428
1977
-
[40]
M. Gell-Mann, P. Ramond and R. Slansky,Complex Spinors and Unified Theories, Conf. Proc. C790927(1979) 315–321, [1306.4669]
Pith/arXiv arXiv 1979
-
[41]
Schechter and J
J. Schechter and J. W. F. Valle,Neutrino Masses in SU(2) x U(1) Theories,Phys. Rev. D22(1980) 2227
1980
-
[42]
R. N. Mohapatra and G. Senjanovic,Neutrino Mass and Spontaneous Parity Nonconservation,Phys. Rev. Lett.44(1980) 912
1980
-
[43]
Schechter and J
J. Schechter and J. W. F. Valle,Neutrino Decay and Spontaneous Violation of Lepton Number,Phys. Rev. D25(1982) 774
1982
-
[44]
Rakshit,Neutrino masses and R-parity violation,Mod
S. Rakshit,Neutrino masses and R-parity violation,Mod. Phys. Lett. A19(2004) 2239–2258, [hep-ph/0406168]
Pith/arXiv arXiv 2004
-
[45]
Y. Grossman and S. Rakshit,Neutrino masses in R-parity violating supersymmetric models,Phys. Rev. D69(2004) 093002, [hep-ph/0311310]
Pith/arXiv arXiv 2004
-
[46]
A. Choudhury, S. Mitra, A. Mondal and S. Mondal,An MCMC analysis to probe trilinear RPV SUSY scenarios and possible LHC signatures,2411.08112
-
[47]
S. Roy and B. Mukhopadhyaya,Some implications of a supersymmetric model with R-parity breaking bilinear interactions,Phys. Rev. D55(1997) 7020–7029, [hep-ph/9612447]
Pith/arXiv arXiv 1997
-
[48]
B. de Carlos and P. L. White,R-parity violation effects through soft supersymmetry breaking terms and the renormalization group,Phys. Rev. D54(1996) 3427–3446, [hep-ph/9602381]
Pith/arXiv arXiv 1996
-
[49]
Nardi,Renormalization group induced neutrino masses in supersymmetry without R-parity,Phys
E. Nardi,Renormalization group induced neutrino masses in supersymmetry without R-parity,Phys. Rev. D55(1997) 5772–5779, [hep-ph/9610540]
Pith/arXiv arXiv 1997
-
[50]
R. Hempfling,Neutrino masses and mixing angles in SUSY GUT theories with explicit R-parity breaking,Nucl. Phys. B478(1996) 3–30, [hep-ph/9511288]
Pith/arXiv arXiv 1996
-
[51]
M. Hirsch, M. A. Diaz, W. Porod, J. C. Romao and J. W. F. Valle,Neutrino masses and mixings from supersymmetry with bilinear R parity violation: A Theory – 22 – for solar and atmospheric neutrino oscillations,Phys. Rev. D62(2000) 113008, [hep-ph/0004115]
Pith/arXiv arXiv 2000
-
[52]
R. S. Hundi,Constraints from neutrino masses and muon (g-2) in the bilinear R-parity violating supersymmetric model,Phys. Rev. D83(2011) 115019, [1101.2810]
Pith/arXiv arXiv 2011
-
[53]
M. A. D´ ıaz, M. Rivera and N. Rojas,On Neutrino Masses in the MSSM with BRpV,Nucl. Phys. B887(2014) 338–357, [1401.7357]
Pith/arXiv arXiv 2014
-
[54]
M. Hirsch, J. C. Romao and J. W. F. Valle,Bilinear R-parity violating SUSY: Neutrinoless double beta decay in the light of solar and atmospheric neutrino data, Phys. Lett. B486(2000) 255–262, [hep-ph/0002264]
Pith/arXiv arXiv 2000
-
[55]
A. Abada, S. Davidson and M. Losada,Neutrino masses and mixings in the MSSM with soft bilinear R(p) violation,Phys. Rev. D65(2002) 075010, [hep-ph/0111332]
Pith/arXiv arXiv 2002
-
[56]
M. A. Diaz, C. Mora and A. R. Zerwekh,Study of a neutrino mass texture generated in supergravity with bilinear R-parity violation,Eur. Phys. J. C44 (2005) 277–286, [hep-ph/0410285]
Pith/arXiv arXiv 2005
-
[57]
F. de Campos, O. J. P. Eboli, M. B. Magro, W. Porod, D. Restrepo, S. P. Das et al.,Probing Neutralino Properties in Minimal Supergravity with Bilinear R-Parity Violation,Phys. Rev. D86(2012) 075001, [1206.3605]
Pith/arXiv arXiv 2012
-
[58]
M. Gozdz and W. A. Kaminski,Constraining bilinear R-parity violation from neutrino masses,Phys. Rev. D78(2008) 075021, [1201.1241]
Pith/arXiv arXiv 2008
-
[59]
A. Choudhury, S. Mitra, A. Mondal and S. Mondal,Bilinear R-parity violating supersymmetry under the light of neutrino oscillation, Higgs and flavor data,JHEP 02(2024) 004, [2305.15211]
arXiv 2024
-
[60]
H. K. Dreiner, D. K¨ ohler and S. Nangia,Aνapproach to analyzing neutrino data in theR-parity-violating MSSM,Eur. Phys. J. C83(2023) 44, [2210.07253]
arXiv 2023
-
[61]
P. Fileviez Perez and S. Spinner,The Minimal Theory for R-parity Violation at the LHC,JHEP04(2012) 118, [1201.5923]
Pith/arXiv arXiv 2012
-
[62]
S. Dumitru, B. A. Ovrut and A. Purves,TheR-parity Violating Decays of Charginos and Neutralinos in the B-L MSSM,JHEP02(2019) 124, [1810.11035]
Pith/arXiv arXiv 2019
-
[63]
S. Dumitru, B. A. Ovrut and A. Purves,R-parity Violating Decays of Wino Chargino and Wino Neutralino LSPs and NLSPs at the LHC,JHEP06(2019) 100, [1811.05581]. [71]ATLAScollaboration, G. Aad et al.,Search for trilepton resonances from chargino and neutralino pair production in √s= 13 TeVppcollisions with the ATLAS detector,Phys. Rev. D103(2021) 112003, [20...
Pith/arXiv arXiv 2019
-
[64]
Atlas experiment - public results
A. Collaboration, “Atlas experiment - public results.”https: //twiki.cern.ch/twiki/bin/view/AtlasPublic/SupersymmetryPublicResults, 2023. – 23 –
2023
-
[65]
Cms experiment - physics results
C. Collaboration, “Cms experiment - physics results.” https://twiki.cern.ch/twiki/bin/view/CMSPublic/PhysicsResultsSUS, 2023
2023
-
[66]
X. Wang and M. Abdughani,Current status and prospects of light bino-higgsino dark matter in natural SUSY,2602.14088
-
[67]
L. Constantin, S. Kraml, A. Lessa, T. Reymermier and W. Waltenberger,On the coverage of electroweak-inos within the pMSSM with SModelS – a comparison with the ATLAS pMSSM study,2512.14502
-
[68]
A. Chatterjee, A. Choudhury, S. Mitra, A. Mondal and S. Mondal,Exploring the BSM parameter space with neural network aided Simulation-Based Inference,JHEP 12(2025) 138, [2502.11928]
arXiv 2025
-
[69]
A. Choudhury, A. Mondal and S. Sarkar,Searches for the BSM scenarios at the LHC using decision tree-based machine learning algorithms: a comparative study and review of random forest, AdaBoost, XGBoost and LightGBM frameworks,Eur. Phys. J. ST233(2024) 2425–2463, [2405.06040]
arXiv 2024
-
[70]
A. S. Cornell, B. Fuks, M. D. Goodsell and A. M. Ncube,Improving smuon searches with neural networks,Eur. Phys. J. C85(2025) 51, [2411.04526]
arXiv 2025
-
[71]
M. M. Altakach, S. Kraml, A. Lessa, S. Narasimha, T. Pascal, T. Reymermier et al.,Global LHC constraints on electroweak-inos with SModelS v2.3,SciPost Phys.16(2024) 101, [2312.16635]
arXiv 2024
-
[72]
M. Chakraborti, U. Chattopadhyay and S. Poddar,How light a higgsino or a wino dark matter can become in a compressed scenario of MSSM,JHEP09(2017) 064, [1702.03954]
Pith/arXiv arXiv 2017
- [73]
-
[74]
D. Chowdhury, K. M. Patel, X. Tata and S. K. Vempati,Indirect Searches of the Degenerate MSSM,Phys. Rev. D95(2017) 075025, [1612.06471]
Pith/arXiv arXiv 2017
-
[75]
R. K. Barman, B. Bhattacherjee, A. Chakraborty and A. Choudhury,Study of MSSM heavy Higgs bosons decaying into charginos and neutralinos,Phys. Rev. D 94(2016) 075013, [1607.00676]
Pith/arXiv arXiv 2016
-
[76]
A. Choudhury and S. Mondal,Revisiting the Exclusion Limits from Direct Chargino-Neutralino Production at the LHC,Phys. Rev. D94(2016) 055024, [1603.05502]
Pith/arXiv arXiv 2016
-
[77]
M. Chakraborti, U. Chattopadhyay, A. Choudhury, A. Datta and S. Poddar, Reduced LHC constraints for higgsino-like heavier electroweakinos,JHEP11(2015) 050, [1507.01395]
Pith/arXiv arXiv 2015
-
[78]
M. Chakraborti, U. Chattopadhyay, A. Choudhury, A. Datta and S. Poddar,The Electroweak Sector of the pMSSM in the Light of LHC - 8 TeV and Other Data, JHEP07(2014) 019, [1404.4841]. – 24 –
Pith/arXiv arXiv 2014
-
[79]
A. Choudhury and A. Datta,Neutralino dark matter confronted by the LHC constraints on Electroweak SUSY signals,JHEP09(2013) 119, [1305.0928]
Pith/arXiv arXiv 2013
-
[80]
A. Choudhury and A. Datta,Many faces of low mass neutralino dark matter in the unconstrained MSSM, LHC data and new signals,JHEP06(2012) 006, [1203.4106]
Pith/arXiv arXiv 2012
discussion (0)
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