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Xin Zhang

Researcher at Pacific Northwest National Laboratory

Publications -  224
Citations -  7824

Xin Zhang is an academic researcher from Pacific Northwest National Laboratory. The author has contributed to research in topics: Chemistry & Engineering. The author has an hindex of 35, co-authored 160 publications receiving 5341 citations. Previous affiliations of Xin Zhang include National Institute of Standards and Technology & University of Alabama at Birmingham.

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An optical lattice clock with accuracy and stability at the 10 −18 level

TL;DR: This work demonstrates a many-atom system that achieves an accuracy of 6.4 × 10−18, which is not only better than a single-ion-based clock, but also reduces the required measurement time by two orders of magnitude.
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Flame retardant mechanism of polyamide 6–clay nanocomposites ☆

TL;DR: In this article, the thermal and flammability properties of polyamide 6/clay (2 and 5% by mass fraction) nanocomposites were measured to determine their flame retardant (FR) performance.
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Structure of the Vesicular Stomatitis Virus Nucleoprotein-RNA Complex

TL;DR: A 2.9 angstrom structure of a complex containing 10 molecules of the N protein and 90 bases of RNA is determined, which serves to protect the RNA in the absence of polynucleotide synthesis.
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Cellulose ionic conductors with high differential thermal voltage for low-grade heat harvesting.

TL;DR: A cellulosic membrane that relies on sub-nanoscale confinement of ions in oxidized and aligned cellulose molecular chains to enhance selective diffusion under a thermal gradient to demonstrate a flexible and biocompatible heat-to-electricity conversion device via nanoscale engineering based on sustainable materials that can enable large-scale manufacture.
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Hierarchical porous silicon structures with extraordinary mechanical strength as high-performance lithium-ion battery anodes

TL;DR: H hierarchical porous CNT@Si@C microspheres are constructed as anodes for Li-ion batteries, enabling both high electrochemical performance and excellent mechanical strength, and provides insights into the design of electrode materials for other batteries.