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Xingzhan Wei

Researcher at Chinese Academy of Sciences

Publications -  66
Citations -  1953

Xingzhan Wei is an academic researcher from Chinese Academy of Sciences. The author has contributed to research in topics: Graphene & Surface plasmon. The author has an hindex of 19, co-authored 53 publications receiving 1489 citations. Previous affiliations of Xingzhan Wei include University of Melbourne.

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Spring constant calibration of atomic force microscope cantilevers of arbitrary shape

TL;DR: Hydrodynamic functions for a series of irregular and non-rectangular atomic force microscope cantilevers that are commonly used in practice are presented and are expected to be of particular value to the design and application of micro- and nanomechanical systems in general.
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2D/3D perovskite hybrids as moisture-tolerant and efficient light absorbers for solar cells

TL;DR: The development of 2D/3D perovskite hybrids (CA2PbI4/MAPbIxCl3-x) was firstly demonstrated to be a reliable method to combine their advantages, and provided a new concept for achieving both stable and efficient PSCs through the hybridization ofperovskites.
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The surface plasmon modes of self-assembled gold nanocrystals.

TL;DR: It is concluded that self-assembly of highly symmetric, polarization-independent structures with interparticle spacings of order 0.5 nm can now be fabricated.
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Facile Synthesis of 3D Graphene Flowers for Ultrasensitive and Highly Reversible Gas Sensing

TL;DR: In this paper, 3D graphene flowers (GF) cluster patterns are grown directly on an Ni foam substrate by inexpensive homebuilt microwave plasma-enhanced chemical vapor deposition (MPCVD) using the gas mixture H2/C2H4O2@Ar as a precursor.
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DNA-directed self-assembly and optical properties of discrete 1D, 2D and 3D plasmonic structures

TL;DR: In this paper, a review of the assembly of metal nanocrystals using dithiol and DNA-based bifunctional linkers is presented, along with a hybrid top-down and bottom-up technique for obtaining long, linear arrays of crystalline metal nanoparticles.