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20162022
most citedUltra-high frequency vortex-based tweezers for microparticles manipulation with high spatial selectivity and nanoNewton forces

2 citations · 4 across the 3 of their papers we have counts for

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physics.app-ph20221 cited

Single beam acoustical tweezers based on focused beams: A numerical analysis of 2D and 3D trapping capabilities

Zhixiong Gong, Michael Baudoin

Selective single beam tweezers open tremendous perspectives in microfluidics and microbiology for the micromanipulation, assembly and mechanical properties testing of microparticle…

physics.app-ph2021

3D trapping and dynamic axial manipulation with frequency-tuned spiraling acoustical tweezers

Zhixiong Gong, Michael Baudoin

Holographic acoustical tweezers (HAT) based on Archimedes-Fermat spiraling InterDigitated Transducers (S-IDTs) are a versatile tool for the selective manipulation of microparticles…

physics.app-ph2021

Equivalence between angular spectrum-based and multipole expansion-based formulas of the acoustic radiation force and torque

Zhixiong Gong, Michael Baudoin

Two main methods have been proposed to derive the acoustical radiation force and torque applied by an arbitrary acoustic field on a particle: The first one relies on the plane wave…

physics.app-ph2020

Three-dimensional trapping and assembly of small particles with synchronized spherical acoustical vortices

Zhixiong Gong, Michael Baudoin

Three-dimensional harmless contactless manipulation and assembly of micro-objects and micro-organisms would open new horizons in microrobotics and microbiology, e.g. for microsyste…

physics.app-ph2020

Acoustic radiation torque on a particle in a fluid: an angular spectrum based compact expression

Zhixiong Gong, Michael Baudoin

In this work, we derive a set of compact analytical formulas expressing the three-dimensional acoustic radiation torque (ART) exerted on a particle of arbitrary shape embedded in a…

physics.app-ph2019

Particle assembly with synchronized acoustical tweezers

Zhixiong Gong, Michael Baudoin

The contactless selective manipulation of individual objects at the microscale is powerfully enabled by acoustical tweezers based on acoustical vortices [Baudoin et al., Sci. Adv.,…