AI Article Synopsis

  • Anode-free sodium metal batteries (AFSMB) have high energy density but struggle with cycling stability due to uneven sodium deposition.
  • Researchers developed a copper phosphide (CuP) nanowire on a copper substrate to improve sodium deposition uniformity.
  • The CuP@Cu anode showed excellent performance with over 800 cycles at 99.8% efficiency and a full pouch cell demonstrated practical capacity over 170 cycles, indicating potential for real-world applications.

Article Abstract

Anode-free sodium metal battery (AFSMB) promises high energy density but suffers from the difficulty of maintaining high cycling stability. Nonuniform sodium (Na) deposition on the current collector is largely responsible for capacity decay in the cycling process of AFSMB. Here, a unique copper phosphide (CuP) nanowire is constructed on copper (CuP@Cu) as a sodium deposition substrate by an in situ growth method. Superior electrochemical performance of CuP@Cu anode is delivered in asymmetric cells with an average Coulombic efficiency of 99.8% for over 800 cycles at 1 mA cm with 1 mA h cm. The symmetric cell of CuP@Cu displayed a cycling lifespan of over 2000 h at 2 mA cm with 1 mA h cm. Cryo-transmission electron microscope characterization and first principles calculation revealed that the low Na absorption energy and low Na diffusion energy barrier on NaP promoted uniform Na nucleation and deposition, thus enhancing the Na surface stability. Moreover, anode-free NaV(PO)//CuP@Cu full pouch cell delivered a considerable cycling capacity of ≈15 mA h in 170 cycles, demonstrating its practical feasibility.

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Source
http://dx.doi.org/10.1002/adma.202310347DOI Listing

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