ELECTROMAGNETISM, OPTICS, ACOUSTICS, HEAT TRANSFER, CLASSICAL MECHANICS, AND FLUID DYNAMICS |
Prev
Next
|
|
|
Nonlinear oscillation characteristics of magnetic microbubbles under acoustic and magnetic fields |
Lixia Zhao(赵丽霞)1, Huimin Shi(史慧敏)1, Isaac Bello2, Jing Hu(胡静)1, Chenghui Wang(王成会)1, and Runyang Mo(莫润阳)1,† |
1 Shaanxi Key Laboratory of Ultrasonics, School of Physics and Information Technology, Shaanxi Normal University, Xi'an 710119, China; 2 Department of Chemistry, Ahmadu Bello University, Zaria 810001, Nigeria |
|
|
Abstract Microbubbles loaded with magnetic nanoparticles (MMBs) have attracted increasing interests in multimode imaging and drug/gene delivery and targeted therapy. However, the dynamic behaviors generated in diagnostic and therapeutic applications are not clear. In the present work, a novel theoretical model of a single MMB was developed, and the dynamic responses in an infinite viscous fluid were investigated under simultaneous exposure to magnetic and acoustic fields. The results showed that the amplitude reduces and the resonant frequency increases with the strength of the applied steady magnetic field and the susceptibility of the magnetic shell. However, the magnetic field has a limited influence on the oscillating. It is also noticed that the responses of MMB to a time-varying magnetic field is different from a steady magnetic field. The subharmonic components increase firstly and then decrease with the frequency of the magnetic field and the enhanced effect is related to the acoustic driving frequency. It is indicated that there may be a coupling interaction effect between the acoustic and magnetic fields.
|
Received: 30 April 2021
Revised: 08 August 2021
Accepted manuscript online: 19 August 2021
|
PACS:
|
43.25.+y
|
(Nonlinear acoustics)
|
|
43.35.+d
|
(Ultrasonics, quantum acoustics, and physical effects of sound)
|
|
Fund: The authors acknowledge the support of the National Natural Science Foundation of China (Grant Nos. 12074238 and 11974232). |
Corresponding Authors:
Runyang Mo
E-mail: mmrryycn@snnu.edu.cn
|
Cite this article:
Lixia Zhao(赵丽霞), Huimin Shi(史慧敏), Isaac Bello, Jing Hu(胡静), Chenghui Wang(王成会), and Runyang Mo(莫润阳) Nonlinear oscillation characteristics of magnetic microbubbles under acoustic and magnetic fields 2022 Chin. Phys. B 31 034302
|
[1] Sarkar K, Shi W T, Chatterjee D and Forsberg F 2005 J. Acoust. Soc. Am. 118 539 [2] Stride E, Porter C, Prieto A G and Pankhurst Q 2009 Ultrasound Med. Bio. 35 861 [3] Blomley M J K, Cooke J C, Unger E C, Monaghan M J and Cosgrove D O 2001 B. M. J 322 1222 [4] Vlaskou D, Mykhaylyk O and Plank C 2013 Methods Mol. Biol. 948 205 [5] Zhang J, Song L M, Zhang H M, Zhou S J, Jiao Y F, Zhang X G, Zhao Y and Wang Y 2019 Acs Omega 4 4691 [6] Yan L P, Miao W and Li D D 2020 J. Nanosci. Nanotech. 20 6087 [7] Yang F, Li Y X, Chen Z P, Zhang Y, Wu J R and Gu N 2009 Biomaterials 30 3882 [8] Zhao X, Quinto-Su P A and Ohl C D 2009 Phys. Rev. Lett. 102 024501 [9] Gu Y, Chen C, Tu J, Guo X, Wu H and Zhang D 2016 Ultrason. Sonochem. 29 309 [10] Young J B, Schmiedel T and Kang W 1996 Phys. Rev. Lett. 77 48 [11] He W, Yang F, Wu Y H, Wen S, Chen P, Zhang Y and Gu N 2012 Mater. Lett. 68 64 [12] Sciallero C, Grishenkov D, Kothapalli S V V N, Oddo L and Trucco A 2013 J. Acoust. Soc. Am 134 3918 [13] Duan L, Yang F, Song L, Fang K, Tian J L, Liang Y J, Li M X, Xu N, Chen Z D, Zhang Y and Gu N 2015 Soft Matter 11 5492 [14] Stride E, Owen J, Mulvana H, Pankhurst Q, Tang M and Eckersley R 2012 J. Acoust. Soc. Am. 131 3245 [15] Zhang B H, Howuk K, Wu H Y, Gao Y and Jiang X N 2019 Ultrasonics 98 62 [16] Owen J, Rademeyer P, Chung D, Qian C, David H, Constantin C, Peter F, Pankhurst Q A and Stride E 2015 Interface Focus 5 20150001 [17] Steven J L 2014 Phys. Fluids 26 061901 [18] Malvar S, Gontijo R G and Cunha F R 2018 J. Eng. Math. 108 143 [19] Boev M L, Polunin V M, Ryapolov P A, Karpova G V and Prokhoro P A 2014 Acoust. Phys. 60 1134 [20] Mulvana H, Eckersley R J, Tang M X, Pankhurst Q and Stride E 2012 Ultrasound Med. Biol. 38 864 [21] Church C C 1995 J. Acoust. Soc. Am. 97 1510 [22] Zhao L X, Mo R Y and Wang C H 2021 Acta Phys. Sin. 70 014301 (in Chinese) [23] Chen J, Zhao L X, Wang C H and Mo R Y 2021 J. Magn. Magn. Mater 538 168293 [24] Hosseini S M, Ghasemi E, Fazlali A and Henneke D E 2012 J. Nanopart. Res. 14 1 [25] Chen W Z 2014 Acoustic Cavitation Physics (Beijing:Science Press) pp. 415-417 (in Chinese) [26] Guo S H 2008 Electrodynamics (3nd edn.) (Beiing:Higher Education Press) pp. 81-86 (in Chinese) [27] Mo R Y, Wu L Y, Zhan S N and Zhang Y H 2015 Acta Phys. Sin. 64 261 (in Chinese) |
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
Altmetric
|
blogs
Facebook pages
Wikipedia page
Google+ users
|
Online attention
Altmetric calculates a score based on the online attention an article receives. Each coloured thread in the circle represents a different type of online attention. The number in the centre is the Altmetric score. Social media and mainstream news media are the main sources that calculate the score. Reference managers such as Mendeley are also tracked but do not contribute to the score. Older articles often score higher because they have had more time to get noticed. To account for this, Altmetric has included the context data for other articles of a similar age.
View more on Altmetrics
|
|
|