TY - JOUR
T1 - Acousto-dielectric tweezers enable independent manipulation of multiple particles
AU - Shen, Liang
AU - Tian, Zhenhua
AU - Yang, Kaichun
AU - Rich, Joseph
AU - Zhang, Jinxin
AU - Xia, Jianping
AU - Collyer, Wesley
AU - Lu, Brandon
AU - Hao, Nanjing
AU - Pei, Zhichao
AU - Chen, Chuyi
AU - Huang, Tony Jun
N1 - Publisher Copyright:
© 2024 The Authors.
PY - 2024/8
Y1 - 2024/8
N2 - Acoustic tweezers have gained substantial interest in biology, engineering, and materials science for their label-free, precise, contactless, and programmable manipulation of small objects. However, acoustic tweezers cannot independently manipulate multiple microparticles simultaneously. This study introduces acousto-dielectric tweezers capable of independently manipulating multiple microparticles and precise control over intercellular distances and cyclical cell pairing and separation for detailed cell-cell interaction analysis. Our acousto-dielectric tweezers leverage the competition between acoustic radiation forces, generated by standing surface acoustic waves (SAWs), and dielectrophoretic (DEP) forces, induced by gradient electric fields. Modulating these fields allows for the precise positioning of individual microparticles at points where acoustic radiation and DEP forces are in equilibrium. This mechanism enables the simultaneous movement of multiple microparticles along specified paths as well as cyclical cell pairing and separation. We anticipate our acousto-dielectric tweezers to have enormous potential in colloidal assembly, cell-cell interaction studies, disease diagnostics, and tissue engineering.
AB - Acoustic tweezers have gained substantial interest in biology, engineering, and materials science for their label-free, precise, contactless, and programmable manipulation of small objects. However, acoustic tweezers cannot independently manipulate multiple microparticles simultaneously. This study introduces acousto-dielectric tweezers capable of independently manipulating multiple microparticles and precise control over intercellular distances and cyclical cell pairing and separation for detailed cell-cell interaction analysis. Our acousto-dielectric tweezers leverage the competition between acoustic radiation forces, generated by standing surface acoustic waves (SAWs), and dielectrophoretic (DEP) forces, induced by gradient electric fields. Modulating these fields allows for the precise positioning of individual microparticles at points where acoustic radiation and DEP forces are in equilibrium. This mechanism enables the simultaneous movement of multiple microparticles along specified paths as well as cyclical cell pairing and separation. We anticipate our acousto-dielectric tweezers to have enormous potential in colloidal assembly, cell-cell interaction studies, disease diagnostics, and tissue engineering.
UR - https://www.scopus.com/pages/publications/85200939240
U2 - 10.1126/sciadv.ado8992
DO - 10.1126/sciadv.ado8992
M3 - 文章
C2 - 39110808
AN - SCOPUS:85200939240
SN - 2375-2548
VL - 10
JO - Science Advances
JF - Science Advances
IS - 32
M1 - ado8992
ER -