Literature DB >> 29997175

Giant and explosive plasmonic bubbles by delayed nucleation.

Yuliang Wang1,2, Mikhail E Zaytsev2,3, Guillaume Lajoinie2,4, Hai Le The4,5, Jan C T Eijkel4,5, Albert van den Berg4,5, Michel Versluis2,4, Bert M Weckhuysen6, Xuehua Zhang7,2, Harold J W Zandvliet3, Detlef Lohse8,9.   

Abstract

When illuminated by a laser, plasmonic nanoparticles immersed in water can very quickly and strongly heat up, leading to the nucleation of so-called plasmonic vapor bubbles. While the long-time behavior of such bubbles has been well-studied, here, using ultrahigh-speed imaging, we reveal the nucleation and early life phase of these bubbles. After some delay time from the beginning of the illumination, a giant bubble explosively grows, and collapses again within 200 μs (bubble life phase 1). The maximal bubble volume [Formula: see text] remarkably increases with decreasing laser power, leading to less total dumped energy E. This dumped energy shows a universal linear scaling relation with [Formula: see text], irrespective of the gas concentration of the surrounding water. This finding supports that the initial giant bubble is a pure vapor bubble. In contrast, the delay time does depend on the gas concentration of the water, as gas pockets in the water facilitate an earlier vapor bubble nucleation, which leads to smaller delay times and lower bubble nucleation temperatures. After the collapse of the initial giant bubbles, first, much smaller oscillating bubbles form out of the remaining gas nuclei (bubble life phase 2). Subsequently, the known vaporization dominated growth phase takes over, and the bubble stabilizes (life phase 3). In the final life phase 4, the bubble slowly grows by gas expelling due to heating of the surrounding. Our findings on the explosive growth and collapse during the early life phase of a plasmonic vapor bubble have strong bearings on possible applications of such bubbles.

Entities:  

Keywords:  energy conversion; nucleation dynamics; plasmonic bubbles; superheat; vaporization

Year:  2018        PMID: 29997175      PMCID: PMC6065032          DOI: 10.1073/pnas.1805912115

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  21 in total

1.  Superheating water by CW excitation of gold nanodots.

Authors:  Michael T Carlson; Andrew J Green; Hugh H Richardson
Journal:  Nano Lett       Date:  2012-02-10       Impact factor: 11.189

2.  Nanoplasmonics for chemistry.

Authors:  Guillaume Baffou; Romain Quidant
Journal:  Chem Soc Rev       Date:  2014-02-19       Impact factor: 54.564

3.  Generation of laser-induced cavitation bubbles with a digital hologram.

Authors:  P A Quinto-Su; V Venugopalan; C-D Ohl
Journal:  Opt Express       Date:  2008-11-10       Impact factor: 3.894

4.  Brandaris 128 ultra-high-speed imaging facility: 10 years of operation, updates, and enhanced features.

Authors:  Erik C Gelderblom; Hendrik J Vos; Frits Mastik; Telli Faez; Ying Luan; Tom J A Kokhuis; Antonius F W van der Steen; Detlef Lohse; Nico de Jong; Michel Versluis
Journal:  Rev Sci Instrum       Date:  2012-10       Impact factor: 1.523

5.  Comparison of vapor formation of water at the solid/water interface to colloidal solutions using optically excited gold nanostructures.

Authors:  Susil Baral; Andrew J Green; Maksim Y Livshits; Alexander O Govorov; Hugh H Richardson
Journal:  ACS Nano       Date:  2014-02-10       Impact factor: 15.881

6.  Plasmonic nanobubbles as transient vapor nanobubbles generated around plasmonic nanoparticles.

Authors:  Ekaterina Lukianova-Hleb; Ying Hu; Loredana Latterini; Luigi Tarpani; Seunghyun Lee; Rebekah A Drezek; Jason H Hafner; Dmitri O Lapotko
Journal:  ACS Nano       Date:  2010-04-27       Impact factor: 15.881

7.  Plasmonic nanoparticle-generated photothermal bubbles and their biomedical applications.

Authors:  Dmitri Lapotko
Journal:  Nanomedicine (Lond)       Date:  2009-10       Impact factor: 5.307

8.  Solar vapor generation enabled by nanoparticles.

Authors:  Oara Neumann; Alexander S Urban; Jared Day; Surbhi Lal; Peter Nordlander; Naomi J Halas
Journal:  ACS Nano       Date:  2012-11-28       Impact factor: 15.881

9.  Evolution of light-induced vapor generation at a liquid-immersed metallic nanoparticle.

Authors:  Zheyu Fang; Yu-Rong Zhen; Oara Neumann; Albert Polman; F Javier García de Abajo; Peter Nordlander; Naomi J Halas
Journal:  Nano Lett       Date:  2013-03-25       Impact factor: 11.189

10.  Formation and dissolution of microbubbles on highly-ordered plasmonic nanopillar arrays.

Authors:  Xiumei Liu; Lei Bao; Michele Dipalo; Francesco De Angelis; Xuehua Zhang
Journal:  Sci Rep       Date:  2015-12-21       Impact factor: 4.379

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  11 in total

1.  Direct measuring of single-heterogeneous bubble nucleation mediated by surface topology.

Authors:  Xiaoli Deng; Yun Shan; Xiaohui Meng; Zhaoyang Yu; Xiaoxi Lu; Yunqing Ma; Jiao Zhao; Dong Qiu; Xianren Zhang; Yuwen Liu; Qianjin Chen
Journal:  Proc Natl Acad Sci U S A       Date:  2022-07-12       Impact factor: 12.779

2.  Optothermally Assembled Nanostructures.

Authors:  Jingang Li; Yuebing Zheng
Journal:  Acc Mater Res       Date:  2021-04-02

3.  Leveraging the Imaging Transmit Pulse to Manipulate Phase-Change Nanodroplets for Contrast-Enhanced Ultrasound.

Authors:  Yiying I Zhu; Heechul Yoon; Andrew X Zhao; Stanislav Y Emelianov
Journal:  IEEE Trans Ultrason Ferroelectr Freq Control       Date:  2019-01-25       Impact factor: 2.725

4.  Plasmonic Bubble Nucleation and Growth in Water: Effect of Dissolved Air.

Authors:  Xiaolai Li; Yuliang Wang; Mikhail E Zaytsev; Guillaume Lajoinie; Hai Le The; Johan G Bomer; Jan C T Eijkel; Harold J W Zandvliet; Xuehua Zhang; Detlef Lohse
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2019-08-28       Impact factor: 4.126

5.  Measuring the activation energy barrier for the nucleation of single nanosized vapor bubbles.

Authors:  Jing Chen; Kai Zhou; Yongjie Wang; Jia Gao; Tinglian Yuan; Jie Pang; Shu Tang; Hong-Yuan Chen; Wei Wang
Journal:  Proc Natl Acad Sci U S A       Date:  2019-06-12       Impact factor: 11.205

6.  Plasmonic Bubble Nucleation in Binary Liquids.

Authors:  Marvin Detert; Binglin Zeng; Yuliang Wang; Hai Le The; Harold J W Zandvliet; Detlef Lohse
Journal:  J Phys Chem C Nanomater Interfaces       Date:  2019-12-31       Impact factor: 4.126

7.  Ultrafast photomechanical transduction through thermophoretic implosion.

Authors:  Nikita Kavokine; Shuangyang Zou; Ruibin Liu; Antoine Niguès; Bingsuo Zou; Lydéric Bocquet
Journal:  Nat Commun       Date:  2020-01-02       Impact factor: 14.919

8.  Strong Transient Flows Generated by Thermoplasmonic Bubble Nucleation.

Authors:  Steven Jones; Daniel Andrén; Tomasz J Antosiewicz; Alexander Stilgoe; Halina Rubinsztein-Dunlop; Mikael Käll
Journal:  ACS Nano       Date:  2020-12-08       Impact factor: 15.881

9.  Laser-Induced Plasmonic Nanobubbles and Microbubbles in Gold Nanorod Colloidal Solution.

Authors:  Shang-Yang Yu; Chang-Hsuan Tu; Jiunn-Woei Liaw; Mao-Kuen Kuo
Journal:  Nanomaterials (Basel)       Date:  2022-03-31       Impact factor: 5.076

Review 10.  A review of emerging physical transfection methods for CRISPR/Cas9-mediated gene editing.

Authors:  Apresio K Fajrial; Qing Qing He; Nurul I Wirusanti; Jill E Slansky; Xiaoyun Ding
Journal:  Theranostics       Date:  2020-04-15       Impact factor: 11.556

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