Advances in piezoelectric thin films for acoustic biosensors, acoustofluidics and lab-on-chip applications

Достижения в области пьезоэлектрических тонких плёнок для акустических биосенсоров, акустофлюидики и приложений «лаборатория-на-чипе»
Yongqing Fu, Jikui Luo, Nam‐Trung Nguyen, A. J. Walton, Andrew J. Flewitt, X.T. Zu, Yifan Li, Glen McHale, A. Matthews, E. Iborra, Hejun Du, W. I. Milne
2017-04-24

MEMS processingacoustic biosensorsacoustofluidicslab-on-chip devicespiezoelectric thin films
Recently, piezoelectric thin films including zinc oxide (ZnO) and aluminium nitride (AlN) have found a broad range of lab-on-chip applications such as biosensing, particle/cell concentrating, sorting/patterning, pumping, mixing, nebulisation and jetting. Integrated acoustic wave sensing/microfluidic devices have been fabricated by depositing these piezoelectric films onto a number of substrates such as silicon, ceramics, diamond, quartz, glass, and more recently also polymer, metallic foils and bendable glass/silicon for making flexible devices. Such thin film acoustic wave devices have great potential for implementing integrated, disposable, or bendable/flexible lab-on-a-chip devices into various sensing and actuating applications. This paper discusses the recent development in engineering high performance piezoelectric thin films, and highlights the critical issues such as film deposition, MEMS processing techniques, control of deposition/processing parametres, film texture, doping, dispersion effects, film stress, multilayer design, electrode materials/designs and substrate selections. Finally, advances in using thin film devices for lab-on-chip applications are summarised and future development trends are identified.
1
High-performance film engineering depends on deposition, MEMS processing, texture, doping, dispersion, stress, multilayer design, electrode configuration, and substrate selection.
2
The paper identifies continued advances and future development trends in piezoelectric thin-film devices for acoustic biosensors, acoustofluidics, and lab-on-chip applications.
3
These devices offer potential for integrated, disposable, flexible, and bendable lab-on-chip sensing and actuation systems.
4
Thin-film acoustic devices have been integrated on silicon, ceramics, diamond, quartz, glass, polymers, metallic foils, and bendable glass or silicon substrates.
5
ZnO and AlN piezoelectric thin films enable diverse lab-on-chip functions, including biosensing, particle and cell manipulation, pumping, mixing, nebulization, and jetting.

piezoelectric thin-film acoustic wave devices for lab-on-chip applications

engineering high-performance piezoelectric thin films and their acoustic sensing and actuation capabilities, including deposition, processing, material, structural, and substrate effects

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2017-04-24
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Authors
Yongqing Fu
Jikui Luo
Nam‐Trung Nguyen
A. J. Walton
Andrew J. Flewitt
X.T. Zu
Yifan Li
Glen McHale
A. Matthews
E. Iborra
Hejun Du
W. I. Milne
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