Lee Young-Geun, An Geon-Hyoung
ACS Appl Mater Interfaces. 2020 Sep 16;12(37):41342-41349. doi: 10.1021/acsami.0c10512. Epub 2020 Sep 3.
The rapid expansion of the development of the electrochemical capacitor appliance and its industry areas has created the need for long cycling stability of over 30 000 cycles along with an ultrafast performance (referred to as ultrafast longevity). In recent years, zinc-ion hybrid supercapacitors (ZICs) are considered to be emerging energy storage applications thanks to their high specific capacity and remarkable cycling stability. However, ZICs still face serious challenges in overcoming the ultrafast performance and lifetime limitations related to the cathode materials, activated carbon (AC), due to inadequate electrical properties and poor wettability between the electrolyte and the electrode, which cause reductions in specific capacity and lifetime rapidly at high current densities during cycling. To address these drawbacks, a novel phosphorus (P) and boron (B) codoped AC (designated P&B-AC) is presented herein with enhanced electrical properties due to B-doping along with improved wettability due to P-doping to provide an ultrafast longevity ZICs. The prepared ZICs display a superior electrochemical performance with an excellent specific capacity of 169.4 mAh g at 0.5 A g, a remarkable ultrafast performance of 84.0 mAh g at 10 A g, and outstanding ultrafast longevity indicated by an 88% capacity retention for up to 30 000 cycles at 10 A g. The excellent energy storage ability is firmly ascribed to the P and B codoping synergistic effect, leading to a superior diffusion capability of Zn ion and charge-transfer process of the AC cathode.
电化学电容器及其产业领域的迅速发展,催生了对超过30000次循环的长循环稳定性以及超快性能(称为超快速寿命)的需求。近年来,锌离子混合超级电容器(ZICs)因其高比容量和出色的循环稳定性,被视为新兴的储能应用。然而,由于阴极材料活性炭(AC)的电性能不足以及电解质与电极之间的润湿性差,导致在循环过程中高电流密度下比容量和寿命迅速降低,ZICs在克服与阴极材料相关的超快性能和寿命限制方面仍面临严峻挑战。为了解决这些缺点,本文提出了一种新型的磷(P)和硼(B)共掺杂活性炭(称为P&B-AC),由于B掺杂增强了电性能,同时由于P掺杂改善了润湿性,从而提供了具有超快速寿命的ZICs。制备的ZICs表现出优异的电化学性能,在0.5 A g下具有169.4 mAh g的出色比容量,在10 A g下具有84.0 mAh g的显著超快性能,以及在10 A g下高达30000次循环时容量保持率为88%所表明的出色超快速寿命。优异的储能能力坚定地归因于P和B共掺杂的协同效应,导致Zn离子具有卓越的扩散能力以及AC阴极的电荷转移过程。