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			<titleStmt><title level='a'>LHC Search Strategy for Squarks in Higgsino-LSP Scenarios with Leptons and b-Jets in the Final State</title></titleStmt>
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				<publisher></publisher>
				<date>09/01/2022</date>
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				<bibl> 
					<idno type="par_id">10428048</idno>
					<idno type="doi">10.3390/particles5030023</idno>
					<title level='j'>Particles</title>
<idno>2571-712X</idno>
<biblScope unit="volume">5</biblScope>
<biblScope unit="issue">3</biblScope>					

					<author>Ernesto Arganda</author><author>Antonio Delgado</author><author>Roberto A. Morales</author><author>Mariano Quirós</author>
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			<abstract><ab><![CDATA[The higgsino Lightest Supersymmetric Particle (LSP) scenario opens up the possibility of decays of strongly produced particles to an intermediate neutralino, due to the Yukawa-suppressed direct decays to the higgsino. Those decays produce multijet signals with a Higgs or a Z boson being produced in the decay of the intermediate neutralino to the LSP. In this paper, we study the discovery prospects of squarks that produce b-jets and leptons in the final state. Our collider analysis provides signal significances at the 3σ level for luminosities of 1 ab−1, and at the 5σ level if we project these results for 3 ab−1.]]></ab></abstract>
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<div xmlns="http://www.tei-c.org/ns/1.0"><head n="1.">Introduction</head><p>The hierarchy problem and the existence of dark matter (DM) are two of the strongest motivations to enlarge the Standard Model (SM) with low energy R-parity conserving supersymmetry (MSSM) <ref type="bibr">[1]</ref><ref type="bibr">[2]</ref><ref type="bibr">[3]</ref><ref type="bibr">[4]</ref><ref type="bibr">[5]</ref>. One of the consequences is the stability of the LSP, and hence a possible DM candidate. One appealing possibility to avoid the constraints coming from direct detection experiments is to assume that the higgsino is the LSP <ref type="bibr">[6]</ref>, and its implementation in the MSSM as done in <ref type="bibr">[7]</ref>.</p><p>Building on the intuition and knowledge gained in our previous works <ref type="bibr">[8]</ref><ref type="bibr">[9]</ref><ref type="bibr">[10]</ref> on the LHC phenomenology of MSSM scenarios with higgsino-LSP, and taking into account the large number of events that we could expect at 14 TeV and 300 fb -1 for the production of squark pairs <ref type="bibr">[10]</ref>, we consider in this work that the bino-like neutralino decays into the higgsino-LSP plus a leptonic Z boson as another interesting decay channel. This feature implies, on the one hand, the reduction of expected signal events; however, on the other hand, it will provide a better control of all backgrounds, especially for discarding the QCD multijet background.</p><p>We now summarize our previous work on related subjects. We have studied the gluino pair production with subsequent decays into the bino-like neutralino plus two jets, then decaying into the LSP plus the Higgs boson resulting in a final state of four light-jets, four b-jets and large amount of missing energy <ref type="bibr">[8]</ref>. Another interesting signature for gluino pair production was presented in <ref type="bibr">[9]</ref> with 4j + 2&#964; + E miss T final state. Finally, we studied the pair production of squark with decays resulting in 2 light-jets, two Higgs bosons (decaying into b b) plus missing energy in the final state (also with the bino-like neutralino as intermediate state in the SUSY cascade) in <ref type="bibr">[10]</ref>.</p><p>This paper is organized as follows: in Section 2 we present the details of the event simulation and develop our search strategy by means of the characterization of the signal against the background, and Section 3 is devoted to the discussion of our main results and a summary of the most important conclusions.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head n="2.">Simulation and Collider Analysis</head><p>The signal and backgrounds were generated with MadGraph_aMC@NLO 2.8.1 <ref type="bibr">[11]</ref> for a center-of-mass energy of &#8730; s = 14 TeV. The events are showered and hadronized using PYTHIA 8.2 <ref type="bibr">[12]</ref>, and the detector effects are implemented with Delphes 3.3.3 <ref type="bibr">[13]</ref>. We consider a working point for the efficiency of b-tagging of 0.75, with a rate of misidentification of 0.01 for light-jets and 0.1 for c-jets. The internal analysis codes and simulation input files are available upon request to authors.</p><p>The relevant signature for this work is represented in Figure <ref type="figure">1</ref>, which corresponds to first-generation squark-pair production followed by the decay into a bino-like &#967;0</p><p>3 plus a light jet. Then, one &#967;0</p><p>3 decays into the higgsino-like LSP and the SM-like Higgs boson (decaying into b b). To reduce the QCD backgrounds, we consider that the other &#967;0 3 decays into the LSP plus a Z boson decaying into e + e -or &#181; + &#181; -pairs. We study the same supersymmetric spectra as in our previous work <ref type="bibr">[10]</ref>, which is not excluded by the validated analyses of CheckMATE 2.0.24 <ref type="bibr">[14]</ref> (We have canvassed searches with higher luminosity and we have found no analysis that would exclude our spectrum ). Within these higgsino-LSP MSSM scenarios, in which we vary M 1 from 600 to 800 GeV and fix M 2 = 3 TeV, M 3 = 2.2 TeV and &#181; = 0.5 TeV, one has BR( &#967;0 3 &#8594; &#967;0 1,2 h)&#8764;BR( &#967;0 3 &#8594; &#967;0 2,1 Z) but the lower BR(Z &#8594; l -l + ) = 6.7% (l = e, &#181;) with respect to BR(h &#8594; b b) = 58% is compensated for by a cleaner final state than in our previous work, yielding to a complementary channel to these spectra. On the other hand, the production cross section of the signal is obtained from <ref type="bibr">[15]</ref>, in which NLO and NLL QCD corrections are included. We define two production cases corresponding to both pp &#8594; &#361;L &#361;L and pp &#8594; dL dL (Left case), and to pp &#8594; &#361;R &#361;R (Right case). Concerning the experimental bounds on our MSSM scenarios, we have not found any LHC search with the same final state and similar spectra. As far as we know, the most related analysis to our study would be <ref type="bibr">[16,</ref><ref type="bibr">17]</ref>. However, in these works, it is assumed that there are only Higgs bosons in the electroweak production and with a massless gravitino. Moreover, for colored-particle production, no b-tagging is done, and it is assumed that the decay of the second neutralino is via a Z boson without Higgs bosons. Therefore, our proposed MSSM scenarios evade again such exclusion limits. In addition, our comparison with CheckMATE gives <ref type="bibr">[18]</ref> as the most sensitive search (but very far from the exclusion) for its signal region SRI -MLL -60 when looking for compressed supersymmetric spectra with leptons and missing transverse momentum in the final state (but no b-jets). Finally, supersymmetric signatures with leptons, b-jets, and missing energy are produced by top squarks; see for instance <ref type="bibr">[19]</ref>, thus they are not sensitive to our signature with Higgs and Z bosons.</p><p>The relevant backgrounds are t t+jets and t t production in association with a vector boson. The leptons coming from the Z-boson decay in the signature reject the presence of the QCD multijet background in this analysis. We then consider the following SM backgrounds: the fully leptonic decay of t t pair up to one additional light jet, t tlep + j (inc.); the hadronic decay of t t in association with a leptonic Z boson, t thad + Z; the semileptonic decay of t t with a leptonic Z boson, t tsemilep + Z; and the semileptonic decay of t t in association with a leptonic W boson, t tsemilep + W. The jet matching and merging is performed by the MLM algorithm <ref type="bibr">[20,</ref><ref type="bibr">21]</ref> using xqcut = 20 for all generated samples and qcut equal to 50 and 250 for backgrounds and signal, respectively.</p><p>We demand two b-jets and two opposite-sign (OS) same-flavor leptons (electrons or muons) at reconstructed level:</p><p>To optimize our background simulation, we display in Figure <ref type="figure">2</ref> the transverse momentum of the second leading lepton p   Therefore, we applied at detector level the following cuts:</p><p>and</p><p>We develop a search strategy for a luminosity of L = 1 ab -1 , corresponding to the high luminosity LHC phase (HL-LHC), and optimize our analysis for a benchmark with squark masses of 1 TeV for both Left and Right productions. After requiring Equations ( <ref type="formula">1</ref>)-(3), the t thad + Z background disappears. To mostly reduce the backgrounds with leptons and missing transverse energy coming from the W boson, we resort to the transverse mass of the second leading lepton p 2 nd lep and the missing momentum p miss T given by m</p><p>We also consider the effective mass variable m eff corresponding to the scalar sum of the missing energy and the transverse momentum of all reconstructed objects. Figure <ref type="figure">5</ref> shows the distributions of these two variables after demand the cuts of Equations ( <ref type="formula">1</ref>)-(3). We can see from the left panel of Figure <ref type="figure">5</ref> that the t tlep + j (inc.) and t tsemilep + W &#177; backgrounds have values below 220 GeV for this variable. From the effective mass distributions, we found that background peaks are below 1000 GeV while the signal have most of its events above this value.</p><p>To obtain an estimate of the LHC sensitivity to our SUSY signal, we use the following expression for the signal significance, including background systematic uncertainties <ref type="bibr">[22,</ref><ref type="bibr">23]</ref>:</p><p>where S (B) is the number of signal (background) events and &#963; B = (&#8710;B)B, with &#8710;B being the relative systematic uncertainty chosen to be a conservative value of 30%.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head n="3.">Discussion and Summary</head><p>The resulting cut flows for both Left and Right signal cases are presented in Tables <ref type="table">1</ref> and<ref type="table">2</ref>, respectively, in which the different cuts that define our search strategy are listed. First we can observe that the selection cuts are very useful to drastically reduce the t tlep + j background, which is potentially the most problematic, and whose number of events drops by two orders of magnitude after these cuts, while the number of events of the rest of the backgrounds and signal are reduced by about one order of magnitude. The cuts of Equations ( <ref type="formula">2</ref>)-( <ref type="formula">3</ref>) remove all t thad + Z background events and reduce two orders of magnitude of the rest, while the signal events decrease less than one order of magnitude. After the m 2 nd lep T cut, only the t tsemilep + Z background survives, and the signal is hardly affected. Finally, the m e f f cut helps to further reduce the t tsemilep + Z background with little change in the number of final signal events. At the end, for a total integrated luminosity of L = 1 ab -1 , we expect signal significances of 4.02&#963; and 2.61&#963; for the Left and Right cases, respectively. If we project these results for a luminosity of 3 ab -1 , the significances would reach values of 6.65&#963; and 4.37&#963;, respectively, that one can consider at the discovery level of sensitivity. For this projection, we assume in a conservative way that the background rates scale as the cross section of the signal. In addition, the zeros in the last row of Tables 1 and 2 must be interpreted as the projection of our vanishing simulated samples to L = 1 ab -1 .</p><p>Table <ref type="table">1</ref>. Cut flow with L = 1 ab -1 corresponding to the Left case signal production. The last column is the significance with a systematic uncertainty in the background of 30%. The last row is the projection to L = 3 ab -1 . The promising results in Tables and 2, for the higgsino-LSP MSSM benchmarks with squark masses of 1 TeV, encourage the extension of our analysis to other values of the parameter space of interest, defined in the plane [M q, M &#967;0 3 ]. We show in Figure <ref type="figure">6</ref> the contour lines in the plane [M q, M &#967;0 3 ] for qL (left panel) and &#361;R (right panel) pair productions. The solid (dotted) lines correspond to a luminosity of L = 1 (3) ab -1 . The brown, red, and blue colors represent the values of 2&#963;, 3&#963; and 5&#963;, respectively, for the signal significance, S. For the lowest luminosity of 1 ab -1 , we are able to obtain 2&#963; significances, in the Left case, for virtually any M qL value within the range considered [850 GeV-1100 GeV] and bino mass values above &#8764;650 GeV and below &#8764;850 GeV. One would reach significances at the evidence level for values of M qL &lt; 1050 GeV and M &#967;0 3 between 700 GeV and 850 GeV. This same area defines the discovery-level sensitivity for L = 3 ab -1 in the Left case. Our search strategy, applied to the Right case, allows the obtaining of 2&#963; significances for M &#361;R 825 GeV and practically any value of M 3 for L = 1 ab -1 . Evidence-level significances are obtained in this case for M &#967;0 3 800 GeV and M &#361;R values between 950 GeV and 1000 GeV. These squark and bino mass values also delimit the discovery-level area in the Right case for L = 3 ab -1 .</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Process</head><p>To summarize, we have developed a search strategy for pairs of squarks at the HL-LHC, which both decay into bino neutralinos plus a jet. In turn, one of the binos decays into a Higgs boson plus the LSP, while the other decays into the LSP and a leptonic Z boson, which allows us to keep all backgrounds under control and to smoothly discard the QCD multijet background. Our collider analysis provides signal significances at the evidence level for luminosities of 1 ab -1 and at the discovery level if we project these results for 3 ab -1 . Together with our previous works <ref type="bibr">[8]</ref><ref type="bibr">[9]</ref><ref type="bibr">[10]</ref>, these complementary analyses represent a proof of principle of searches that are sensitive to spectra such that the gluino ( <ref type="bibr">[8,</ref><ref type="bibr">9]</ref>) or the first-generation squarks ( <ref type="bibr">[10]</ref> and this manuscript) do not directly decay to the LSP but to an intermediate electroweakino that produces Higgs or Z bosons in its subsequent decay. Therefore, those spectra would escape current experimental searches. </p></div></body>
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