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Peidong Yang

Researcher at University of California, Berkeley

Publications -  597
Citations -  159053

Peidong Yang is an academic researcher from University of California, Berkeley. The author has contributed to research in topics: Nanowire & Perovskite (structure). The author has an hindex of 183, co-authored 562 publications receiving 144351 citations. Previous affiliations of Peidong Yang include Max Planck Society & University of California, Santa Barbara.

Papers
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Anisotropic phase segregation and migration of Pt in nanocrystals en route to nanoframe catalysts.

TL;DR: The revealed anisotropic phase segregation and migration mechanism offers a radically different approach to fabrication of nanocatalysts with desired compositional distributions and performance.
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The DArk Matter Particle Explorer mission

Jin Chang, +176 more
TL;DR: The DArk Matter Particle Explorer (DAMPE) as mentioned in this paper, one of the four scientific space science missions within the framework of the Strategic Pioneer Program on Space Science of the Chinese Academy of Sciences, was successfully launched on December 17th, 2015 from the Jiuquan Satellite Launch Center.
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ZnO Nanoribbon Microcavity Lasers

TL;DR: In this article, the authors examined the optical cavity effects within nanowires with cross-sections other than hexagonal and showed that the growth directions and side facets of the produced nanoribbons are identical for the two sets of the samples.
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Sol-gel synthesis of ordered mesoporous alumina

TL;DR: Well-ordered mesoporous alumina materials with high surface area and a narrow pore size distribution were synthesized using a sol-gel based self assembly technique.
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Tunable Cu Enrichment Enables Designer Syngas Electrosynthesis from CO2

TL;DR: In situ surface-enhanced Raman spectroscopy and first-principles density functional theory calculations are used to develop a systematic picture of CO* binding on Cu-enriched Au surface model systems, which are then translated to nanostructured electrocatalysts, whereby controlled Cu enrichment enables tunable syngas production while maintaining current densities greater than 20 mA/cm2.