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Xudong Wang

Researcher at University of Wisconsin-Madison

Publications -  395
Citations -  32512

Xudong Wang is an academic researcher from University of Wisconsin-Madison. The author has contributed to research in topics: Nanowire & Nanogenerator. The author has an hindex of 81, co-authored 360 publications receiving 25033 citations. Previous affiliations of Xudong Wang include Hong Kong Polytechnic University & Sun Yat-sen University.

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Direct-current nanogenerator driven by ultrasonic waves

TL;DR: A nanowire nanogenerator that is driven by an ultrasonic wave to produce continuous direct-current output and offers a potential solution for powering nanodevices and nanosystems.
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Large-Scale Hexagonal-Patterned Growth of Aligned ZnO Nanorods for Nano-optoelectronics and Nanosensor Arrays

TL;DR: An effective approach is demonstrated for growing large-area, hexagonally patterned, aligned ZnO nanorods and opens the possibility of creating patterned one-dimensional nanostructures for applications as sensor arrays, piezoelectric antenna arrays, optoelectronic devices, and interconnects.
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Microfibre–nanowire hybrid structure for energy scavenging

TL;DR: This work establishes a methodology for scavenging light-wind energy and body-movement energy using fabrics and presents a simple, low-cost approach that converts low-frequency vibration/friction energy into electricity using piezoelectric zinc oxide nanowires grown radially around textile fibres.
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Piezoelectric field effect transistor and nanoforce sensor based on a single ZnO nanowire.

TL;DR: A piezoelectric field effect transistor (PE-FET) that is composed of a ZnO nanowire (NW) bridging across two Ohmic contacts, in which the source to drain current is controlled by the bending of the NW.
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A CsPbBr3 Perovskite Quantum Dot/Graphene Oxide Composite for Photocatalytic CO2 Reduction

TL;DR: The use of CsPbBr3 QDs as novel photocatalysts to convert CO2 into solar fuels in nonaqueous media and the rate of electron consumption increased 25.5% because of improved electron extraction and transport.