Zhi Gang, Hu Zhanwei, Zhou Gaojie, Zhang Zhuangfei, Wang Hui, Kong Dezhi, Xu Tingting, Li Xinjian, Wang Ye
Key Laboratory of Material Physics, Ministry of Education, School of Physics, Zhengzhou University, Zhengzhou 450052, China.
Nanoscale. 2025 May 9;17(18):11752-11761. doi: 10.1039/d5nr00743g.
Sodium metal is considered a promising anode material for sodium metal batteries (SMBs) owing to its high theoretical specific capacity and low electrochemical potential. Nevertheless, its practical application is hindered by the challenge of dendrite formation. To address this issue, a separator modification strategy was adapted to enhance the performance of sodium metal anodes (SMAs) using Au nanoparticle-decorated two-dimensional diamane on a commercial polypropylene substrate (Au-diamane/PP) separator. The sodiophilic Au-diamane/PP separator facilitates improved Na ion diffusion kinetics and induces a dendrite-free deposition morphology, effectively suppressing dendrite growth. The dendrite-free deposition behavior was systematically characterized using optical microscopy and scanning electron microscopy. The symmetric Na||Na cell incorporating the Au-diamane/PP separator exhibits exceptional cycling stability, maintaining operation for more than 2100 h at 2 mA cm with 1 mA h cm. The sodiophilicity originates from the formed AuNa alloy formed on the surface of diamane during the discharging process. Additionally, a full cell with a NaV(PO)@C cathode, Au-diamane/PP separator, and Na metal anode delivers a high reversible capacity of 88.4 mA h g even after more than 300 cycles. Our work underscores the potential of the Au-diamane/PP separator in advancing the development of SMBs with extended cycle life and enhanced performance.
由于钠金属具有高理论比容量和低电化学势,因此被认为是钠金属电池(SMB)中一种很有前景的负极材料。然而,枝晶形成的挑战阻碍了其实际应用。为了解决这个问题,采用了一种隔膜改性策略,通过在商业聚丙烯基底(Au-二胺/PP)隔膜上使用金纳米颗粒修饰的二维二胺来提高钠金属负极(SMA)的性能。亲钠的Au-二胺/PP隔膜促进了钠离子扩散动力学的改善,并诱导了无枝晶的沉积形态,有效地抑制了枝晶生长。使用光学显微镜和扫描电子显微镜对无枝晶的沉积行为进行了系统表征。包含Au-二胺/PP隔膜的对称Na||Na电池表现出优异的循环稳定性,在2 mA cm²和1 mA h cm²的条件下可维持运行超过2100小时。亲钠性源于放电过程中二胺表面形成的AuNa合金。此外,一个具有NaV(PO)@C正极、Au-二胺/PP隔膜和钠金属负极的全电池即使在超过300次循环后仍能提供88.4 mA h g的高可逆容量。我们的工作强调了Au-二胺/PP隔膜在推进具有更长循环寿命和更高性能的SMB发展方面的潜力。