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Multifunctional Virus Manipulation with Large-Scale Arrays of All-Dielectric Resonant Nanocavities

  • Yuzhi Shi
  • , Yongfeng Wu
  • , Lip Ket Chin*
  • , Zhenyu Li
  • , Jingquan Liu
  • , Mu Ku Chen
  • , Shubo Wang
  • , Yi Zhang
  • , Patricia Yang Liu
  • , Xiaohong Zhou
  • , Hong Cai
  • , Wanzhen Jin
  • , Yefeng Yu
  • , Ruozhen Yu
  • , Wei Huang
  • , Peng Huat Yap
  • , Limin Xiao
  • , Wee Ser
  • , Thi Thanh Binh Nguyen
  • , Yu-Tsung Lin
  • Pin Chieh Wu, Jiayan Liao, Fan Wang, C. T. Chan*, Yuri Kivshar*, Din Ping Tsai*, Ai Qun Liu*
*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Spatial manipulation of a precise number of viruses for host cell infection is essential for the extensive studies of virus pathogenesis and evolution. Albeit optical tweezers have been advanced to the atomic level via optical cooling, it is still challenging to efficiently trap and manipulate arbitrary number of viruses in an aqueous environment, being restricted by insufficient strength of optical forces and a lack of multifunctional spatial manipulation techniques. Here, by employing the virus hopping and flexibility of moving the laser position, multifunctional virus manipulation with a large trapping area is demonstrated, enabling single or massive (a large quantity of) virus transporting, positioning, patterning, sorting, and concentrating. The enhanced optical forces are produced by the confinement of light in engineered arrays of nanocavities by fine tuning of the interference resonances, and this approach allows trapping and moving viruses down to 40 nm in size. The work paves the way to efficient and precise manipulation of either single or massive groups of viruses, opening a wide range of novel opportunities for virus pathogenesis and inhibitor development at the single-virus level.
Original languageEnglish
Article number2100197
JournalLaser and Photonics Reviews
Volume16
Issue number5
Online published1 Mar 2022
DOIs
Publication statusPublished - May 2022

Funding

Y.S. acknowledges the support from the startup funding in Shanghai Jiao Tong University, No. WH220403019. Y.S. and A.Q.L. acknowledge the Singapore National Research Foundation under the Competitive Research Program (NRFCRP13-2014-01), the Singapore Ministry of Education (MOE) Tier 3 grant (MOE2017-T3-1-001). D.P.T. acknowledges the support from the UGC/RGC of HKSAR, China (Project No. AoE/P-502/20) and Shenzhen Science and Technology Innovation Commission Grant (No. SGDX2019081623281169). P.C.W. acknowledges the support from the Ministry of Science and Technology (MOST), Taiwan (Grant number: 107-2923-M-006-004-MY3; 108-2112-M-006-021-MY3; 110-2124-M-006-004), and in part from the Higher Education Sprout Project of the Ministry of Education (MOE) to the Headquarters of University Advancement at National Cheng Kung University (NCKU). P.C.W. also acknowledges the support from the Ministry of Education (Yushan Young Scholar Program), Taiwan. Y.K. acknowledges a support from the Australian Research Council (grant DP210101292).

Research Keywords

  • all-dielectric nanocavities
  • multifunctional virus manipulation chip
  • optical tweezers
  • optofluidics
  • versatile optical manipulations

RGC Funding Information

  • RGC-funded

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