Accelerated Chemical Reactions and Organic Synthesis in Leidenfrost Droplets

被引:116
|
作者
Bain, Ryan M. [1 ]
Pulliam, Christopher J. [1 ]
Thery, Fabien [1 ]
Cooks, R. Graham [1 ]
机构
[1] Purdue Univ, Dept Chem, 560 Oval Dr, W Lafayette, IN 47907 USA
基金
美国国家科学基金会;
关键词
Leidenfrost effect; mass spectrometry; reaction acceleration; reaction kinetics; synthesis; IONIZATION MASS-SPECTROMETRY; FIELD; CHEMISTRY; FILM;
D O I
10.1002/anie.201605899
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Leidenfrost levitated droplets can be used to accelerate chemical reactions in processes that appear similar to reaction acceleration in charged microdroplets produced by electrospray ionization. Reaction acceleration in Leidenfrost droplets is demonstrated for a base-catalyzed Claisen-Schmidt condensation, hydrazone formation from precharged and neutral ketones, and for the Katritzky pyrylium into pyridinium conversion under various reaction conditions. Comparisons with bulk reactions gave intermediate acceleration factors (2-50). By keeping the volume of the Leidenfrost droplets constant, it was shown that interfacial effects contribute to acceleration; this was confirmed by decreased reaction rates in the presence of a surfactant. The ability to multiplex Leidenfrost microreactors, to extract product into an immiscible solvent during reaction, and to use Leidenfrost droplets as reaction vessels to synthesize milligram quantities of product is also demonstrated.
引用
收藏
页码:10478 / 10482
页数:5
相关论文
共 50 条
  • [21] Motion of Leidenfrost self-propelled droplets on ratchet in low- and high-temperature regimes
    Daeseong Jo
    Journal of Mechanical Science and Technology, 2023, 37 : 5425 - 5430
  • [22] Ion-Molecule Reactions of Organic Molecules with Noble Metal Atoms in Superfluid Helium Droplets
    Sitorus, Berlian
    Pughe, Charlotte
    Mizouri, Arin
    Ellis, Andrew M.
    Yang, Shengfu
    3RD INTERNATIONAL SEMINAR ON CHEMISTRY: GREEN CHEMISTRY AND ITS ROLE FOR SUSTAINABILITY, 2018, 2049
  • [23] Interfacial tension controlled fusion of individual femtolitre droplets and triggering of confined chemical reactions on demand
    Jung, Seung-Yong
    Retterer, Scott T.
    Collier, C. Patrick
    LAB ON A CHIP, 2010, 10 (24) : 3373 - 3376
  • [24] Chemical reactions of organic compounds in supercritical water gasification and oxidation
    Wei, Ning
    Xu, Donghai
    Hao, Botian
    Guo, Shuwei
    Guo, Yang
    Wang, Shuzhong
    WATER RESEARCH, 2021, 190
  • [25] Motion of Leidenfrost self-propelled droplets on ratchet in low- and high-temperature regimes
    Jo, Daeseong
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2023, 37 (10) : 5425 - 5430
  • [26] [8+2] cycloaddition reactions in organic synthesis
    Nair, Vijay
    Abhilash, K. Gopalakrishnan
    SYNLETT, 2008, (03) : 301 - 312
  • [27] Iron catalyzed organic reactions in water: A "naturelike" synthesis
    Zhu, Fuying
    Lu, Guo-Ping
    Wang, Fei
    Ren, Enxiang
    Yu, Yueyi
    Lin, Yamei
    CURRENT OPINION IN GREEN AND SUSTAINABLE CHEMISTRY, 2023, 40
  • [28] Microfluidic platform for combinatorial synthesis in picolitre droplets
    Theberge, Ashleigh B.
    Mayot, Estelle
    El Harrak, Abdeslam
    Kleinschmidt, Felix
    Huck, Wilhelm T. S.
    Griffiths, Andrew D.
    LAB ON A CHIP, 2012, 12 (07) : 1320 - 1326
  • [29] Synthesis and chemical reactions of the steroidal hormone 17α-methyltestosterone
    El-Desoky, El-Sayed Ibrahim
    Reyad, Mahmoud
    Afsah, Elsayed Mohammed
    Dawidar, Abdel-Aziz Mahmoud
    STEROIDS, 2016, 105 : 68 - 95
  • [30] Proposed chemical mechanisms leading to secondary organic aerosol in the reactions of aliphatic amines with hydroxyl and nitrate radicals
    Price, Derek J.
    Clark, Christopher H.
    Tang, Xiaochen
    Cocker, David R.
    Purvis-Roberts, Kathleen L.
    Silva, Philip J.
    ATMOSPHERIC ENVIRONMENT, 2014, 96 : 135 - 144