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Hai-Tian Zhang

Researcher at Pennsylvania State University

Publications -  39
Citations -  1995

Hai-Tian Zhang is an academic researcher from Pennsylvania State University. The author has contributed to research in topics: Thin film & Molecular beam epitaxy. The author has an hindex of 21, co-authored 34 publications receiving 1440 citations. Previous affiliations of Hai-Tian Zhang include Purdue University & Yanshan University.

Papers
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Correlated metals as transparent conductors

TL;DR: An alternative design strategy for identifying high-conductivity, high-transparency metals relies on strong electron-electron interactions resulting in an enhancement in the carrier effective mass, thereby opening up new avenues to develop transparent conductors.
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Novel Bimorphological Anisotropic Bulk Nanocomposite Materials with High Energy Products.

TL;DR: This study describes the first fabrication of a novel bimorphological anisotropic bulk nanocomposite using a multistep deformation approach, which outperforms, for the first time, the corresponding pure rare-earth magnet with 58% enhancement in energy product.
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A first-principles approach to finite temperature elastic constants

TL;DR: Its applications to elastic constants of Al, Cu, Ni, Mo, Ta, NiAl, and Ni₃Al from 0 K up to their respective melting points show excellent agreement between the predicted values and existing experimental measurements.
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Controllably Manipulating Three-Dimensional Hybrid Nanostructures for Bulk Nanocomposites with Large Energy Products

TL;DR: This work has achieved the desired nanostructures: oriented hard magnetic SmCo grains and homogeneously distributed soft magnetic Fe(Co) grains with high fractions and small sizes, and pave a new way to manipulating 3D hybrid nanostructure in a controllable manner.
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Wafer-scale growth of VO2 thin films using a combinatorial approach.

TL;DR: It is demonstrated that ‘electronic grade' transition metal oxide films can be realized on a large scale using a combinatorial growth approach, which can be extended to other multivalent oxide systems.