M. Mofazzel Hosen
University of Central Florida
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Featured researches published by M. Mofazzel Hosen.
Physical Review B | 2016
Madhab Neupane; Ilya Belopolski; M. Mofazzel Hosen; Daniel S. Sanchez; Raman Sankar; Maria Szlawska; Su-Yang Xu; Klauss Dimitri; Nagendra Dhakal; Pablo Maldonado; Peter M. Oppeneer; D. Kaczorowski; Fangcheng Chou; M. Zahid Hasan; Tomasz Durakiewicz
The search for new topological phases of matter is a major new direction in condensed matter physics. Recent experimental realizations of Dirac and Weyl semimetal phases pave the way to look for other exotic phases of matter in real materials. In this paper, the authors present a systematic angle-resolved photoemission spectroscopy study of ZrSiS, a potential topological nodal semimetal candidate. Their systematic measurements establish the spinless nodal fermion semimetal phase in ZrSiS, which is supported by their first-principles calculations. This work puts forward the ZrSiS-type material family as a new platform to explore exotic states of quantum matter.
Physical Review B | 2017
M. Mofazzel Hosen; Klauss Dimitri; Ilya Belopolski; Pablo Maldonado; Raman Sankar; Nagendra Dhakal; Gyanendra Dhakal; Taiason Cole; Peter M. Oppeneer; D. Kaczorowski; Fangcheng Chou; M. Zahid Hasan; Tomasz Durakiewicz; Madhab Neupane
The discovery of a topological nodal-line (TNL) semimetal phase in ZrSiS has invigorated the study of other members of this family. Here, we present a comparative electronic structure study of ZrSiX (where X = S, Se, Te) using angle-resolved photoemission spectroscopy (ARPES) and first-principles calculations. Our ARPES studies show that the overall electronic structure of ZrSiX materials comprises of the diamond-shaped Fermi pocket, the nearly elliptical-shaped Fermi pocket, and a small electron pocket encircling the zone center (
Journal of Physics: Condensed Matter | 2016
Madhab Neupane; M. Mofazzel Hosen; Ilya Belopolski; Nicholas Wakeham; Klauss Dimitri; Nagendra Dhakal; Jian-Xin Zhu; M. Zahid Hasan; Eric D. Bauer; F. Ronning
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Nature Communications | 2016
Madhab Neupane; Nasser Alidoust; M. Mofazzel Hosen; Jian-Xin Zhu; Klauss Dimitri; Su-Yang Xu; Nagendra Dhakal; Raman Sankar; Ilya Belopolski; Daniel S. Sanchez; Tay-Rong Chang; Horng-Tay Jeng; Koji Miyamoto; Taichi Okuda; Hsin Lin; A. Bansil; D. Kaczorowski; Fangcheng Chou; M. Zahid Hasan; Tomasz Durakiewicz
) point, the M point, and the X point of the Brillouin zone, respectively. We also observe a small Fermi surface pocket along the M-
Scientific Reports | 2016
Madhab Neupane; Y. Ishida; Raman Sankar; Jian-Xin Zhu; Daniel S. Sanchez; Ilya Belopolski; Su-Yang Xu; Nasser Alidoust; M. Mofazzel Hosen; Shik Shin; Fangcheng Chou; M. Zahid Hasan; Tomasz Durakiewicz
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Physical Review B | 2018
Klauss Dimitri; M. Mofazzel Hosen; Gyanendra Dhakal; Hongchul Choi; Firoza Kabir; Christopher Sims; D. Kaczorowski; Tomasz Durakiewicz; Jian-Xin Zhu; Madhab Neupane
-M direction in ZrSiTe, which is absent in both ZrSiS and ZrSiSe. Furthermore, our theoretical studies show a transition from nodal-line to nodeless gapped phase by tuning the chalcogenide from S to Te in these material systems. Our findings provide direct evidence for the tunability of the TNL phase in ZrSiX material systems by adjusting the spin-orbit coupling (SOC) strength via the X anion.
Nature Communications | 2018
M. Mofazzel Hosen; Klauss Dimitri; Ashis K. Nandy; Alex Aperis; Raman Sankar; Gyanendra Dhakal; Pablo Maldonado; Firoza Kabir; Christopher Sims; Fangcheng Chou; D. Kaczorowski; Tomasz Durakiewicz; Peter M. Oppeneer; Madhab Neupane
The search of new topological phases of matter is one of the new directions in condensed matter physics. Recent experimental realizations of Dirac semimetal phases pave the way to look for other exotic phases of matter in real materials. Here we present a systematic angle-resolved photoemission spectroscopy (ARPES) study of NdSb, a potential candidate for hosting a Dirac semi-metal phase. Our studies reveal two hole-like Fermi surface pockets present at the zone center ([Formula: see text]) point as well as two elliptical electron-pockets present in the zone corner (X) point of the Brillouin zone (BZ). Interestingly, Dirac-like linearly dispersive states are observed about the zone corner (X) point in NdSb. Our first-principles calculations agree with the experimentally observed bands at the [Formula: see text] point. Moreover, the Dirac-like state observed in NdSb may be a novel correlated state, not yet predicted in calculations. Our study opens a new direction to look for Dirac semi-metal states in other members of the rare earth monopnictide family.
Scientific Reports | 2018
M. Mofazzel Hosen; Gyanendra Dhakal; Klauss Dimitri; Pablo Maldonado; Alex Aperis; Firoza Kabir; Christopher Sims; Peter S. Riseborough; Peter M. Oppeneer; D. Kaczorowski; Tomasz Durakiewicz; Madhab Neupane
Recently, noncentrosymmetric superconductor BiPd has attracted considerable research interest due to the possibility of hosting topological superconductivity. Here we report a systematic high-resolution angle-resolved photoemission spectroscopy (ARPES) and spin-resolved ARPES study of the normal state electronic and spin properties of BiPd. Our experimental results show the presence of a surface state at higher-binding energy with the location of Dirac point at around 700 meV below the Fermi level. The detailed photon energy, temperature-dependent and spin-resolved ARPES measurements complemented by our first-principles calculations demonstrate the existence of the spin-polarized surface states at high-binding energy. The absence of such spin-polarized surface states near the Fermi level negates the possibility of a topological superconducting behaviour on the surface. Our direct experimental observation of spin-polarized surface states in BiPd provides critical information that will guide the future search for topological superconductivity in noncentrosymmetric materials.
Bulletin of the American Physical Society | 2018
Gyanendra Dhakal; M. Mofazzel Hosen; Klauss Dimitri; Alex Aperis; Pablo Maldonado; Ilya Belopolski; Firoza Kabir; Christopher Sims; Zahid Hasan; D. Kaczorowski; Tomasz Durakiewicz; Peter M. Oppeneer; Madhab Neupane
Topological superconductors host new states of quantum matter which show a pairing gap in the bulk and gapless surface states providing a platform to realize Majorana fermions. Recently, alkaline-earth metal Sr intercalated Bi2Se3 has been reported to show superconductivity with a Tc ~ 3 K and a large shielding fraction. Here we report systematic normal state electronic structure studies of Sr0.06Bi2Se3 (Tc ~ 2.5 K) by performing photoemission spectroscopy. Using angle-resolved photoemission spectroscopy (ARPES), we observe a quantum well confined two-dimensional (2D) state coexisting with a topological surface state in Sr0.06Bi2Se3. Furthermore, our time-resolved ARPES reveals the relaxation dynamics showing different decay mechanism between the excited topological surface states and the two-dimensional states. Our experimental observation is understood by considering the intra-band scattering for topological surface states and an additional electron phonon scattering for the 2D states, which is responsible for the superconductivity. Our first-principles calculations agree with the more effective scattering and a shorter lifetime of the 2D states. Our results will be helpful in understanding low temperature superconducting states of these topological materials.
Archive | 2018
M. Mofazzel Hosen; Gyanendra Dhakal; Klauss Dimitri; Hongchul Choi; Firoza Kabir; Christopher Sims; Orest Pavlosiuk; Piotr Wisniewski; Tomasz Durakiewicz; Jian-Xin Zhu; D. Kaczorowski; Madhab Neupane
Topological superconductor (TSC) hosting Majorana fermions has been established as a milestone that may shift our scientific trajectory from research to applications in topological quantum computing. Recently, superconducting Pd-Bi binaries have attracted great attention as a possible medium for the TSC phase as a result of their large spin-orbit coupling strength. Here, we report a systematic high-resolution angle-resolved photoemission spectroscopy (ARPES) study on the normal state electronic structure of superconducting