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Dive into the research topics where Inna Korzhovska is active.

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Featured researches published by Inna Korzhovska.


Nature Materials | 2014

Singular robust room-temperature spin response from topological Dirac fermions

Lukas Zhao; Haiming Deng; Inna Korzhovska; Zhiyi Chen; M. Konczykowski; Andrzej Hruban; Vadim Oganesyan; Lia Krusin-Elbaum

Topological insulators are a class of solids in which the non-trivial inverted bulk band structure gives rise to metallic surface states that are robust against impurity scattering. In three-dimensional (3D) topological insulators, however, the surface Dirac fermions intermix with the conducting bulk, thereby complicating access to the low-energy (Dirac point) charge transport or magnetic response. Here we use differential magnetometry to probe spin rotation in the 3D topological material family (Bi2Se3, Bi2Te3 and Sb2Te3). We report a paramagnetic singularity in the magnetic susceptibility at low magnetic fields that persists up to room temperature, and which we demonstrate to arise from the surfaces of the samples. The singularity is universal to the entire family, largely independent of the bulk carrier density, and consistent with the existence of electronic states near the spin-degenerate Dirac point of the 2D helical metal. The exceptional thermal stability of the signal points to an intrinsic surface cooling process, probably of thermoelectric origin, and establishes a sustainable platform for the singular field-tunable Dirac spin response.


Nature Communications | 2016

Stable topological insulators achieved using high energy electron beams.

Lukas Zhao; M. Konczykowski; Haiming Deng; Inna Korzhovska; Milan Begliarbekov; Zhiyi Chen; E. Papalazarou; M. Marsi; Luca Perfetti; Andrzej Hruban; Agnieszka Wołoś; Lia Krusin-Elbaum

Topological insulators are potentially transformative quantum solids with metallic surface states which have Dirac band structure and are immune to disorder. Ubiquitous charged bulk defects, however, pull the Fermi energy into the bulk bands, denying access to surface charge transport. Here we demonstrate that irradiation with swift (∼2.5 MeV energy) electron beams allows to compensate these defects, bring the Fermi level back into the bulk gap and reach the charge neutrality point (CNP). Controlling the beam fluence, we tune bulk conductivity from p- (hole-like) to n-type (electron-like), crossing the Dirac point and back, while preserving the Dirac energy dispersion. The CNP conductance has a two-dimensional character on the order of ten conductance quanta and reveals, both in Bi2Te3 and Bi2Se3, the presence of only two quantum channels corresponding to two topological surfaces. The intrinsic quantum transport of the topological states is accessible disregarding the bulk size.


Nature Communications | 2015

Emergent surface superconductivity in the topological insulator Sb2Te3.

Lukas Zhao; Haiming Deng; Inna Korzhovska; Milan Begliarbekov; Zhiyi Chen; Erick Andrade; Ethan Rosenthal; Abhay Pasupathy; Vadim Oganesyan; Lia Krusin-Elbaum

Surfaces of three-dimensional topological insulators have emerged as one of the most remarkable states of condensed quantum matter where exotic electronic phases of Dirac particles should arise. Here we report on superconductivity in the topological insulator Sb2Te3 with transition to zero resistance induced through a minor tuning of growth chemistry that depletes bulk conduction channels. The depletion shifts Fermi energy towards the Dirac point as witnessed by a factor of 300 reduction of bulk carrier density and by the largest carrier mobility (≳25,000 cm(2) V(-1) s(-1)) found in any topological material. Direct evidence from transport, the unprecedentedly large diamagnetic screening, and the presence of ∼25 meV gaps detected by scanning tunnelling spectroscopy reveal the superconducting condensate to emerge first in surface puddles, with the onset of global phase coherence at ∼9 K. The rich structure of this state lends itself to manipulation via growth conditions and the material parameters such as Fermi velocity and mean free path.


Nature Materials | 2014

Corrigendum: Singular robust room-temperature spin response from topological Dirac fermions

Lukas Zhao; Haiming Deng; Inna Korzhovska; Zhiyi Chen; M. Konczykowski; Andrzej Hruban; Vadim Oganesyan; Lia Krusin-Elbaum


Bulletin of the American Physical Society | 2018

Direct observation of disorder-induced spin correlations and edge currents in the topological material Sb 2 Te 3

Inna Korzhovska; Shihua Zhao; Haiming Deng; Lukas Zhao; Lia Krusin-Elbaum; Simone Raoux


Bulletin of the American Physical Society | 2018

Thermal scanning probe lithography of topological regions in disordered Sb 2 Te 3 thin films

Shihua Zhao; Inna Korzhovska; Edoardo Albisetti; Elisa Riedo; Lia Krusin-Elbaum


Bulletin of the American Physical Society | 2017

Disorder-induced dimensionality transition and non-local transport in Sb

Inna Korzhovska; Shihua Zhao; Lukas Zhao; Zhiyi Chen; Lia Krusin-Elbaum; Simone Raoux; Ghidewon Arefe


Bulletin of the American Physical Society | 2017

_2

Shihua Zhao; Inna Korzhovska; Lukas Zhao; Zhiyi Chen; Haiming Deng; Lia Krusin-Elbaum; M. Konczykowski; Simone Raoux


Bulletin of the American Physical Society | 2017

Te

Zhiyi Chen; Haiming Deng; Shihua Zhao; Inna Korzhovska; M. Konczykowski; Lia Krusin-Elbaum


Bulletin of the American Physical Society | 2016

_3

Inna Korzhovska; Yury Deshko; Lukas Zhao; Zhiyi Chen; Lia Krusin-Ebaum; Simone Raoux

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Lukas Zhao

City College of New York

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Zhiyi Chen

City College of New York

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Haiming Deng

City College of New York

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Yury Deshko

College of Staten Island

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