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Simon Molander

Researcher at Stockholm University

Publications -  402
Citations -  29358

Simon Molander is an academic researcher from Stockholm University. The author has contributed to research in topics: Large Hadron Collider & Higgs boson. The author has an hindex of 90, co-authored 400 publications receiving 26579 citations. Previous affiliations of Simon Molander include Universidade Federal de São João del-Rei & Petersburg Nuclear Physics Institute.

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Combined Measurement of the Higgs Boson Mass in pp Collisions at √s=7 and 8 TeV with the ATLAS and CMS Experiments

Georges Aad, +5120 more
TL;DR: A measurement of the Higgs boson mass is presented based on the combined data samples of the ATLAS and CMS experiments at the CERN LHC in the H→γγ and H→ZZ→4ℓ decay channels.
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Search for new phenomena in final states with an energetic jet and large missing transverse momentum in pp collisions at √=s=8 TeV with the ATLAS detector

Georges Aad, +2818 more
TL;DR: In this article, a search for new phenomena in final states with an energetic jet and large missing transverse momentum was performed using 20.3 fb(-1) of root s = 8 TeV data collected in 2012.
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Search for high-mass dilepton resonances in pp collisions at s =8 TeV with the ATLAS detector

Georges Aad, +2921 more
- 19 Sep 2014 - 
TL;DR: In this paper, the ATLAS detector at the Large Hadron Collider is used to search for high-mass resonances decaying to dielectron or dimuon final states.
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Performance of $b$-Jet Identification in the ATLAS Experiment

Georges Aad, +2815 more
TL;DR: In this paper, an independent b-tagging algorithm based on the reconstruction of muons inside jets as well as the b tagging algorithm used in the online trigger are also presented.
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Search for dark matter and other new phenomena in events with an energetic jet and large missing transverse momentum using the ATLAS detector

Morad Aaboud, +2957 more
TL;DR: In this paper, a search for new phenomena in final states with an energetic jet and large missing transverse momentum is reported, and the results are translated into exclusion limits in models with pair-produced weakly interacting dark-matter candidates, large extra spatial dimensions, and supersymmetric particles in several compressed scenarios.