4.8 Article

Magneto-Revealing and Acceleration of Hidden Kirkendall Effect in Galvanic Replacement Reaction

期刊

JOURNAL OF PHYSICAL CHEMISTRY LETTERS
卷 12, 期 22, 页码 5294-5300

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.1c01327

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资金

  1. National Key R&D Program of China [2016YFA0401803, 2017YFA0303603]
  2. National Natural Science Foundation of China (NSFC) [U2032218, 11574316, 11904116]
  3. Plan for Major Provincial Science& Technology Project [202003a05020018]
  4. Key Research Program of Frontier Sciences, CAS [QYZDB-SSW-SLH011]
  5. High Magnetic Field Laboratory of Anhui Province

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The study demonstrates that a high magnetic field can be used to control both the rate and product of a chemical reaction, providing a new route for chemical process control and material synthesis design. This highlights the significant impact of magnetic fields on chemical reactions and their potential applications in manipulating reaction outcomes.
Rate and product control are crucial for a chemical process and are useful in a wide range of applications. Traditionally, thermodynamic parameters, such as temperature or pressure, have been used to control the chemical reactions. Here, by using the fabrication of a hollow MnxFeyO4 nanostructure as a model system, we report an experimental tuning of both chemical reaction rate and product by a high magnetic field. A 12 times magneto-acceleration of the galvanic replacement (GR) reaction was observed. Moreover, it is first demonstrated that a magnetic field can unravel and accelerate the hidden Kirkendall effect (KE) in addition to the pristine GR reaction. With coaction of magneto-tuned KE and GR, not only the rate but also the composition as well as magnetic property of the products could be modulated. These observations suggest that not only is a magnetic field a variable parameter that cannot be ignored, but also it can effectively control both rate and product in a chemical reaction, which provides a new route for chemical process controlling and shape/composition designing in material synthesis.

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