Synthesis of tunable gold nanostars via 3D-printed microfluidic device with vibrating sharp-tip acoustic mixing

被引:4
|
作者
Curtin, Kathrine [1 ]
Godary, Toktam [2 ]
Li, Peng [2 ]
机构
[1] West Virginia Univ, Dept Mech & Aerosp Engn, Morgantown, WV USA
[2] West Virginia Univ, C Eugene Bennett Dept Chem, Morgantown, WV 26506 USA
基金
美国国家科学基金会;
关键词
Microfluidic; 3D printing; Nanoparticle synthesis; Gold nanostar; Acoustofluidics; SHAPED GOLD; FLOW SYNTHESIS; NANOPARTICLES; SIZE; SILVER;
D O I
10.1007/s10404-023-02687-8
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Gold nanostars are valuable materials for nanomedicine, energy conversation, and catalysis. Microfluidic synthesis offers a simple and controlled means to produce nanoparticles as they offer precise fluid control and improve heat and mass transfer. 3D-printed microfluidics are a good alternative to PDMS devices because they are affordable to produce and can be more easily integrated with active mixing strategies. 3D-printed microfluidics has only been applied to the production of silver and gold nanospheres, but not complex structures like gold nanostars. Synthesis of gold nanostars requires highly effective mixing to ensure uniform nucleation and growth. In this work, we present a 3D-printed microfluidic device that utilizes an efficient vibrating sharp-tip acoustic mixing system to produce high-quality and reproducible gold nanostars via a seedless and surfactant-free method. The vibrating sharp-tip mixing device can mix three streams of fluid across similar to 300 mu m within 7 ms. The device operates with flow rates ranging from 10 mu L/min to 750 mu L/min at low power requirements (2-45 mW). The optical properties of the resulting nanotars are easily tuned from 650 to 800 nm by modulating the input flow rate. Thus, the presented 3D-printed microfluidic device produces high-quality gold nanostars with tunable optical and physical properties suitable for extensive applications.
引用
收藏
页数:14
相关论文
共 50 条
  • [31] The Use of a 3D-printed Microfluidic Device and Pressure Mobilization for Integrating Capillary Electrophoresis with Electrochemical Detection
    Kimlinger, Melissa J.
    Martin, R. Scott
    ELECTROANALYSIS, 2018, 30 (10) : 2241 - 2249
  • [32] The influence of electrolyte concentration on nanofractures fabricated in a 3D-printed microfluidic device by controlled dielectric breakdown
    Islam, Md Fokhrul
    Yap, Yiing C.
    Li, Feng
    Guijt, Rosanne M.
    Breadmore, Michael C.
    ELECTROPHORESIS, 2020, 41 (23) : 2007 - 2014
  • [33] 3D-printed Microfluidic Device Based on Cotton Threads for Amperometric Estimation of Antioxidants in Wine Samples
    Carneiro, Emmanuelle A.
    Agustini, Deonir
    Figueiredo-Filho, Luiz C. S.
    Banks, Craig E.
    Marcolino-Junior, Luiz Humberto
    Bergamini, Marcio F.
    ELECTROANALYSIS, 2018, 30 (01) : 101 - 108
  • [34] Negligible-cost microfluidic device fabrication using 3D-printed interconnecting channel scaffolds
    Felton, Harry
    Hughes, Robert
    Diaz-Gaxiola, Andrea
    PLOS ONE, 2021, 16 (02):
  • [35] Manufacturing of 3D-Printed Microfluidic Devices for the Synthesis of Drug-Loaded Liposomal Formulations
    Ballacchino, Giulia
    Weaver, Edward
    Mathew, Essyrose
    Dorati, Rossella
    Genta, Ida
    Conti, Bice
    Lamprou, Dimitrios A.
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2021, 22 (15)
  • [36] Low-cost and simple FDM-based 3D-printed microfluidic device for the synthesis of metallic core–shell nanoparticles
    Lucas P. Bressan
    Taíssa M. Lima
    Géssica D. da Silveira
    José A. F. da Silva
    SN Applied Sciences, 2020, 2
  • [37] A multistep immunoassay on a 3D-printed capillarity-driven microfluidic device for point-of-care diagnostics
    Ordutowski, Henry
    Parra-Cabrera, Cesar
    Achille, Clement
    Dochy, Ruben
    Dal Dosso, Francesco
    Lammertyn, Jeroen
    Ameloot, Rob
    Spasic, Dragana
    APPLIED MATERIALS TODAY, 2023, 32
  • [38] Morphological regulation of gold nanorods via enzyme inhibition for quantitative colorimetric and photothermal detection of methyl parathion by a 3D-printed device
    Chen, Yuemei
    Yang, Yuanjiao
    Li, Kejun
    Yuan, Xin
    Zhang, Mei
    MICROCHEMICAL JOURNAL, 2025, 209
  • [39] Low-cost and simple FDM-based 3D-printed microfluidic device for the synthesis of metallic core-shell nanoparticles
    Bressan, Lucas P.
    Lima, Taissa M.
    da Silveira, Gessica D.
    da Silva, Jose A. F.
    SN APPLIED SCIENCES, 2020, 2 (05):
  • [40] Synthesis of iron oxide core chitosan nanoparticles in a 3D printed microfluidic device
    Mehmet D. Aşık
    Mesut Kaplan
    Barbaros Çetin
    Necdet Sağlam
    Journal of Nanoparticle Research, 2021, 23