Influence of Shape and Bubble Diameter on Marangoni Convection in Gold Nanoparticles

被引:0
|
作者
Fernandes, Joshua [1 ]
Kang, Sangmo [1 ]
机构
[1] Department of Mechanical Engineering, Dong-A University, Busan,49315, Korea, Republic of
基金
新加坡国家研究基金会;
关键词
Bubbles (in fluids) - Computational fluid dynamics - Nanoclay - Nanorods;
D O I
10.4028/p-UfCI7K
中图分类号
学科分类号
摘要
New opportunities for applications in areas including photothermal therapy (PTT), biomedical imaging, and energy conversion have been made possible by advancements in nanoparticle technology. Understanding the thermal and fluidic behavior of these nanoparticles is crucial for their effective utilization. In this computational study, numerical simulations are used to examine the convective velocities connected to various gold nanoparticle (AuNP) morphologies, including nanorods, nanoshells, and nanodiscs. Our findings clearly demonstrate that nanorods have the maximum convective velocity of 91 µm/s, making them the most attractive choice for applications needing excellent thermal and fluidic performance. Additionally, we investigate the relationship between bubble diameter and convective velocity in the vicinity of gold nanorods and nanoshells. Our findings indicate that as the bubble diameter expands to 10 μm, there is a noticeable surge in convective velocity, which eventually plateaus. Furthermore, we explore the impact of shell thickness and core radius on convective velocity. A decrease in shell thickness and an increase in core radius were found to significantly enhance convective velocity, with an optimal core radius of 38 nm identified for peak performance. These findings provide vital information for the design optimization of AuNPs, notably for PTT and photoacoustic (PA) imaging, two fields where precise control of thermal and fluidic processes is essential. © 2024 Trans Tech Publications Ltd, Switzerland.
引用
收藏
页码:91 / 96
相关论文
共 50 条
  • [1] Bubble motion induced by marangoni convection under the influence of gravity
    Hein, S
    Ikier, C
    Klein, H
    Wittmann, K
    CHEMICAL ENGINEERING & TECHNOLOGY, 1998, 21 (01) : 41 - 44
  • [2] Marangoni convection around a bubble in microgravity
    Christopher, DM
    Wang, BX
    HEAT TRANSFER 1998, VOL 3: GENERAL PAPERS, 1998, : 489 - 494
  • [3] MARANGONI CONVECTION INDUCED BUBBLE MOTION
    KLEIN, H
    FEUERBACHER, B
    WARME UND STOFFUBERTRAGUNG-THERMO AND FLUID DYNAMICS, 1983, 17 (02): : 115 - 119
  • [4] Stationary bubble formation and Marangoni convection induced by CW laser heating of a single gold nanoparticle
    Setoura, Kenji
    Ito, Syoji
    Miyasaka, Hiroshi
    NANOSCALE, 2017, 9 (02) : 719 - 730
  • [5] Numerical Investigation of Bubble-induced Marangoni Convection
    O'Shaughnessy, Seamus M.
    Robinson, Anthony J.
    INTERDISCIPLINARY TRANSPORT PHENOMENA: FLUID, THERMAL, BIOLOGICAL, MATERIALS, AND SPACE SCIENCES, 2009, 1161 : 304 - 320
  • [6] Numerical Investigation of Bubble Induced Marangoni Convection: Some Aspects of Bubble Geometry
    O'Shaughnessy, Seamus M.
    Robinson, Anthony J.
    MICROGRAVITY SCIENCE AND TECHNOLOGY, 2008, 20 (3-4) : 319 - 325
  • [7] Numerical Investigation of Bubble Induced Marangoni Convection: Some Aspects of Bubble Geometry
    Séamus M. O’Shaughnessy
    Anthony J. Robinson
    Microgravity Science and Technology, 2008, 20 : 319 - 325
  • [8] The Influence of the Magnitude of Gravitational Acceleration on Marangoni Convection About an Isolated Bubble under a Heated Wall
    O'Shaughnessy, Seamus M.
    Robinson, Anthony J.
    HEAT TRANSFER ENGINEERING, 2009, 30 (13) : 1096 - 1107
  • [9] INFLUENCE OF MARANGONI CONVECTION ON POOL BOILING
    VOGEL, B
    STRAUB, J
    FIZIKA NIZKIKH TEMPERATUR, 1990, 16 (05): : 532 - 535
  • [10] Effect of bubble-induced Marangoni convection on dendritic solidification
    Nabavizadeh, Seyed Amin
    Eshraghi, Mohsen
    Felicelli, Sergio D.
    Tewari, Surendra N.
    Grugel, Richard N.
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2019, 116 : 137 - 152