4.8 Review

Nanostructured metal phosphides: from controllable synthesis to sustainable catalysis

期刊

CHEMICAL SOCIETY REVIEWS
卷 50, 期 13, 页码 7539-7586

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1cs00323b

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资金

  1. National Natural Science Foundation of China [22072023, 21872029, U1463204, 21173045]
  2. Natural Science Foundation (NSF) of Fujian Province [2017J07002, 2019J0106]
  3. Program for National Science and Technology Innovation Leading Talents [00387072]
  4. 1st Program of Fujian Province for Top Creative Young Talents
  5. Program for Leading Talents in Fujian Universities

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The review provides an update on controllable synthetic strategies for metal phosphides, passivation strategies for engineering structural and electronic properties, and implementable applications in catalytic fields. Future opportunities and challenges for the development of metal phosphides in materials science and sustainable catalysis are also discussed.
Metal phosphides (MPs) with unique and desirable physicochemical properties provide promising potential in practical applications, such as the catalysis, gas/humidity sensor, environmental remediation, and energy storage fields, especially for transition metal phosphides (TMPs) and MPs consisting of group IIIA and IVA metal elements. Most studies, however, on the synthesis of MP nanomaterials still face intractable challenges, encompassing the need for a more thorough understanding of the growth mechanism, strategies for large-scale synthesis of targeted high-quality MPs, and practical achievement of functional applications. This review aims at providing a comprehensive update on the controllable synthetic strategies for MPs from various metal sources. Additionally, different passivation strategies for engineering the structural and electronic properties of MP nanostructures are scrutinized. Then, we showcase the implementable applications of MP-based materials in emerging sustainable catalytic fields including electrocatalysis, photocatalysis, mild thermocatalysis, and related hybrid systems. Finally, we offer a rational perspective on future opportunities and remaining challenges for the development of MPs in the materials science and sustainable catalysis fields.

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