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Chin. Phys. B, 2026, Vol. 35(3): 034301    DOI: 10.1088/1674-1056/adf9fd
ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS Prev   Next  

Photoacoustic tweezers generated by multiple superposed laser pulses in air

Guo-Dong Tong(佟国栋)1,2,5, Li-Yan Xu(许立言)1,2,5, Wen-Qi Wang(王雯琦)5, Jin-Ping He(何晋平)1,2,3,4,†, and Jun Xia(夏军)5,‡
1 Laboratory of Solar and Space Instruments, Nanjing Institute of Astronomical Optics & Technology, Chinese Academy of Sciences, Nanjing 211135, China;
2 Key Laboratory of Astronomical Optics & Technology CAS, Nanjing Institute of Astronomical Optics & Technology, Chinese Academy of Sciences, Nanjing 211135, China;
3 Chinese Academy of Sciences Nanjing Branch, Nanjing 211135, China;
4 University of Chinese Academy of Sciences, Beijing 100049, China;
5 Joint International Research Laboratory of Information Display and Visualization, School of Electronic Science and Engineering, Southeast University, Nanjing 210096, China;
Abstract  We propose a novel method for generating photoacoustic tweezers via multi-ultrasonic resonance in air. In this study, a focused ultrashort laser pulse with a 50 ns pulse width is used to generate ultrasonic resonance by transferring thermal energy to atmospheric H$_2$O in air. Traveling photoacoustic tweezers are generated by modulating the superposition of multiple ultrasonic waves. Through numerical simulations, we obtained the acoustic pressure and temperature fields of the photoacoustic waves. Experimentally, 10 μm microspherical polystyrene particles were placed messily in a 200 μm wide square microfluidic tube. The resulting shapes of the microparticles after manipulation by the photoacoustic tweezers proved that our experimental results align well with theoretical predictions. We demonstrate that the interaction of laser pulses with water vapor can generate both acoustic waves and photoacoustic tweezers.
Keywords:  acoustic tweezers      laser field modulation      photoacoustic      photoacoustic tweezers      superposition  
Received:  11 June 2025      Revised:  30 July 2025      Accepted manuscript online:  11 August 2025
PACS:  43.35.+d (Ultrasonics, quantum acoustics, and physical effects of sound)  
  52.35.Tc (Shock waves and discontinuities)  
  52.38.-r (Laser-plasma interactions)  
  51.40.+p (Acoustical properties)  
  52.35.-g (Waves, oscillations, and instabilities in plasmas and intense beams)  
Fund: This work was supported by the National Key Research and Development Program of China (Grant No. 2024YFA1612002), the National Natural Science Foundation of China (Grant Nos. 12503094, 11973009, and 11933005), the Jiangsu Provincial Key Research and Development Program (Grant No. BE2023080), the fund from Chinese Academy of Sciences (Grant No. KGFZD-145-23-04-03), China Postdoctoral Science Found (Grant No. 2025M773196), and CAS Young Entrepreneurship Program of Nanjing Institute of Astronomical Optics and Technology, Chinese Academy of Sciences (Grant No. E5Q2500005).
Corresponding Authors:  Jin-Ping He, Jun Xia     E-mail:  jphe@niaot.ac.cn;xiajun@seu.edu.cn

Cite this article: 

Guo-Dong Tong(佟国栋), Li-Yan Xu(许立言), Wen-Qi Wang(王雯琦), Jin-Ping He(何晋平), and Jun Xia(夏军) Photoacoustic tweezers generated by multiple superposed laser pulses in air 2026 Chin. Phys. B 35 034301

[1] McGloin D 2006 Philos Trans. A Math. Phys. Eng. Sci. 364 3521
[2] Yang Y, Ren Y X, Chen M, Arita Y and Rosales-Guzmán C 2021 Adv. Photonics 3 03400
[3] Zemánek P, Jonáš A, Srámek L and Liška M 1998 Opt. Commun. 151 273
[4] Liu S, Lin L and Sun H B 2021 ACS Nano 15 5925
[5] Otte E and Denz C 2020 Appl. Phys. Rev. 7 041308
[6] Courtney C R, Demore C E, Wu H, Grinenko A, Wilcox P D, Cochran S and Drinkwater B W 2014 Appl. Phys. Lett. 104 154103
[7] Gong M, Xu X, Qiao Y, Liu J, He A and Liu X 2024 Chin. Phys. B 33 14302
[8] Li J, Crivoi A, Peng X, Shen L, Pu Y, Fan Z and Cummer S A 2021 Commun. Phys. 4 113
[9] Baudoin M and Thomas J L 2020 Annu. Rev. Fluid Mech. 52 205
[10] Ozcelik A, Rufo J, Guo F, Gu Y, Li P, Lata J and Huang T J 2018 Nat. Methods 15 1021
[11] Foresti D, Nabavi M, Klingauf M, Ferrari A and Poulikakos D 2013 Proc. Natl. Acad. Sci. USA 110 12549
[12] Foresti D and Poulikakos D 2014 Phys. Rev. Lett. 112 24301
[13] Kawamoto H and Seki K 2004 NIP & Digit. Fabr. Conf. pp. 1019–1026
[14] Kawamoto H and Hasegawa N 2004 J. Imaging Sci. Technol. 48 404
[15] Hirayama R, Plasencia D M, Masuda N and Subramanian S 2020 Proc. SPIE 11463, Optical Trapping and Optical Micromanipulation XVII, 114630Q
[16] Orban C, Morrison J T, Chowdhury E A, Nees J A, Frische K, Feister S and Roquemore W M 2015 Phys. Plasmas 22 23110
[17] Bernassau A L, Glynne-Jones P, Gesellchen F, Riehle M, Hill M and Cumming D R S 2014 Ultrasonics 54 268
[18] Peng X, He W, Xin F, Genin G M and Lu T J 2020 J. Mech. Phys. Solids 145 104134
[19] Tu Y L, Chen S J and Hwang Y R 2016 Sensors 16 1973
[20] Yan N, Di W L, Hong Z Y, Xie W J and Wei B B 2019 Chin. Phys. Lett. 36 34303
[21] Tong G D, Xia J, Zhong H F, Liu S, Wu J, Zhao W Q, Wu Z H, Zhang H, Dong C K and Du B T 2022 Phys. Fluids 34 17110
[22] Babjak R and Psikal J 2021 Phys. Plasmas 28 3107
[23] Li Y, Lee C, Chen R, Zhou Q and Shung K K 2014 Appl. Phys. Lett. 105 173701
[24] Silva G T and Baggio A L 2015 Ultrasonics 56 449
[25] Baresch D, Thomas J L and Marchiano R 2016 Phys. Rev. Lett. 116 24301
[26] Courtney C R, Ong C K, Drinkwater B W, Wilcox P D, Demore C, Cochran S, Glynne-Jones P and Hill M 2010 J. Acoust. Soc. Am. 128 EL195
[27] Zharov V P, Malinsky T V and Kurten R C 2005 J. Phys. D: Appl. Phys. 38 2662
[28] Zharov V P, Malinsky T V and Alekhnovich V 2003 Rev. Sci. Instrum. 74 779
[29] Peng Q, Peng Z, Lang Y, Zhu Y, Zhang D, Lü Z and Zhao Z 2022 Chin. Phys. Lett. 39 53301
[30] Misra S, Mishra S K and Sodha M S 2013 Phys. Plasmas 20 103105
[31] Seshadri S R 1998 J. Opt. Soc. Am. A 15 2712
[32] Sprangle P, Penano J R and Hafizi B 2022 Phys. Rev. E 66 46418
[33] Worku N G and Gross H 2019 J. Opt. Soc. Am. A 37 98
[34] Park H K, Kim D, Grigoropoulos C P and Tam A C 1996 J. Appl. Phys. 80 4072
[35] Kim D, Ye M and Grigoropoulos C P 1998 Appl. Phys. A 67 169
[36] Ohiri K A, Kelly S T, Motschman J D, Lin K H, Wood K C and Yellen B B 2018 Lab on a Chip 18 2124
[37] Guo X and Zhu R 2013 In The 7th IEEE International Conference on Nano/Molecular Medicine and Engineering, pp. 125–129
[38] Woerdemann M, Alpmann C, Esseling M and Denz C 2013 Laser & Photonics Reviews 7 839
[39] Collins D J, Devendran C, Ma Z, Ng J W, Neild A and Ai Y 2016 Sci. Adv. 2 e1600089
[40] Thomas J L, Marchiano R and Baresch D 2017 J. Quant. Spectrosc. Radiat. Transf. 195 55
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