Results 1 to 10 of about 684 (166)

Acoustofluidics-Based Intracellular Nanoparticle Delivery [PDF]

open access: yesEngineering
Controlled intracellular delivery of biomolecular cargo is critical for developing targeted therapeutics and cell reprogramming. Conventional delivery approaches (e.g., endocytosis of nano-vectors, microinjection, and electroporation) usually require ...
Zhishang Li
exaly   +4 more sources

Acoustofluidic Actuation of Living Cells [PDF]

open access: yesMicromachines
Acoutofluidics is an increasingly developing and maturing technical discipline. With the advantages of being label-free, non-contact, bio-friendly, high-resolution, and remote-controllable, it is very suitable for the operation of living cells.
Yue Wu   +4 more
doaj   +4 more sources

Acoustofluidics for cell patterning and tissue engineering

open access: yesEngineered Regeneration, 2022
Acoustofluidics has been a promising approach using sound waves to manipulate particles and actuate fluids in biomedical applications. It usually generates acoustic radiation force and acoustic streaming to initiate diffraction, reflection and ...
Zhuhao Wu, Baojie Wen
exaly   +3 more sources

Enhancing Microparticle Separation Efficiency in Acoustofluidic Chips via Machine Learning and Numerical Modeling [PDF]

open access: yesSensors
An integrated approach for enhancing microparticle separation efficiency in acoustofluidic lab-on-a-chip systems is presented, combining numerical modeling in COMSOL 6.2 Multiphysics® with reinforcement learning techniques implemented in Python 3.10.14 ...
Tamara Klymkovych   +3 more
doaj   +2 more sources

A Simulated Investigation of Lithium Niobate Orientation Effects on Standing Acoustic Waves [PDF]

open access: yesSensors, 2023
The integration of high-frequency acoustic waves with microfluidics has been gaining popularity as a method of separating cells/particles. A standing surface acoustic wave (sSAW) device produces constructive interference of the stationary waves ...
Ranjith D. Janardhana, Nathan Jackson
doaj   +2 more sources

Self-Aligned Interdigitated Transducers for Acoustofluidics

open access: yesMicromachines, 2016
The surface acoustic wave (SAW) is effective for the manipulation of fluids and particles at microscale. The current approach of integrating interdigitated transducers (IDTs) for SAW generation into microfluidic channels involves complex and laborious ...
Zhichao Ma, Adrian J T Teo, Say Hwa Tan
exaly   +3 more sources

Droplet acoustofluidics: From acoustic principles to micro manipulations [PDF]

open access: yesNami Jishu Yu Jingmi Gongcheng/Nanotechnology and Precision Engineering
Droplet-based microfluidics have drawn much attention in recent years and have been successfully applied in biochemical analysis, material synthesis, and biomedical engineering.
Tiechuan Li   +2 more
exaly   +2 more sources

Efficient Particle Aggregation Through SSAW Phase Modulation [PDF]

open access: yesMicromachines
In recent years, various devices utilizing surface acoustic waves (SAW) have emerged as powerful tools for manipulating particles and fluids in microchannels. Although they demonstrate a wide range of functionalities across diverse applications, existing
Yiming Li   +5 more
doaj   +2 more sources

Acoustic Waves Coupling with Polydimethylsiloxane in Reconfigurable Acoustofluidic Platform [PDF]

open access: yesAdvanced Science
Acoustofluidics is a promising technology that leverages acoustic waves for precise manipulation of micro/nano‐scale flows and suspended objects within microchannels.
Jeongeun Park   +7 more
doaj   +2 more sources

Measurement of the Thermal Effect of Standing Surface Acoustic Waves in Microchannel by Fluoresence Intensity

open access: yesMicromachines, 2021
Temperature is an important parameter for many medical and biological applications. It is key to measuring the temperature of acoustofluidics devices for controlling the device’s temperature. In this paper, Rhodamine B was used to measure the temperature
Yiqing Li, Shoupeng Wei, Tengfei Zheng
doaj   +1 more source

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