Literature DB >> 33337457

Engineering inclined orientations of piezoelectric films for integrated acoustofluidics and lab-on-a-chip operated in liquid environments.

Yong-Qing Fu1, Hua-Feng Pang2, Hamdi Torun1, Ran Tao3, Glen McHale4, Julien Reboud5, Kai Tao6, Jian Zhou7, Jingting Luo8, Desmond Gibson9, Jikui Luo10, PingAn Hu11.   

Abstract

Different acoustic wave modes are required for effective implementation of biosensing and liquid actuation functions in an acoustic wave-based lab-on-a-chip. For efficient sensing in liquids, shear waves (either a thickness-shear bulk wave or a shear-horizontal surface acoustic wave) can achieve a high sensitivity, without significant loss of acoustic wave energy. On the other hand, longitudinal bulk waves or out-of-plane displacement waves (such as Rayleigh waves) enable efficient sampling functions and liquid manipulation. However, there are significant challenges in developing a lab-on-a-chip to efficiently generate multiple wave modes and perform both these functions on a single piezoelectric substrate, especially when a single crystalline orientation is available. This paper highlights the latest progress in the theories and techniques to deliver both sensing and microfluidic manipulation functions using engineered inclined-angled piezoelectric films, allowing for the simultaneous generation of longitudinal (or Rayleigh) and thickness-shear bulk (or shear-horizontal surface acoustic) waves. Challenges and theoretical constraints for generating various wave modes in the inclined films and techniques to efficiently produce inclined columnar and inclined crystalline piezoelectric films using sputtering deposition methods are presented. Applications of different wave modes in the inclined film-based lab-on-chips with multiple sensing and acoustofluidic functions are also discussed.

Entities:  

Year:  2020        PMID: 33337457     DOI: 10.1039/d0lc00887g

Source DB:  PubMed          Journal:  Lab Chip        ISSN: 1473-0189            Impact factor:   6.799


  2 in total

1.  Flexible thin-film acoustic wave devices with off-axis bending characteristics for multisensing applications.

Authors:  Zhangbin Ji; Jian Zhou; Huamao Lin; Jianhui Wu; Dinghong Zhang; Sean Garner; Alex Gu; Shurong Dong; YongQing Fu; Huigao Duan
Journal:  Microsyst Nanoeng       Date:  2021-11-26       Impact factor: 7.127

2.  Dynamic Mitigation Mechanisms of Rime Icing with Propagating Surface Acoustic Waves.

Authors:  Deyu Yang; Luke Haworth; Prashant Agrawal; Ran Tao; Glen McHale; Hamdi Torun; James Martin; Jingting Luo; Xianghui Hou; YongQing Fu
Journal:  Langmuir       Date:  2022-09-07       Impact factor: 4.331

  2 in total

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