This is a demo store. No orders will be fulfilled.

Supramolecular-mediated high nitrogen doping hierarchical porous carbon cathodes with multi-physi/chemisorption sites for Zn-ion hybrid supercapacitors

JOURNAL OF POWER SOURCES [2025]
Yuchen Li, Muqi Chang, Penghao Chai, Qiulong Guan, Jianghuan Li, Lijie Li, Lixia Bao, Wensheng Deng, Jiong Peng, Xin Li
ABSTRACT

Enhancing Zn 2+ storage necessitates the meticulous design of carbon-based cathodes with specific attributes, notably substantial nitrogen doping and high surface area. However, synthesizing materials that embody both advantages persists as a considerable obstacle. Herein, we introduce a strategy for synthesizing self-assembled supramolecular crystal framework carbonization-activated high nitrogen doping hierarchical porous carbon (H-NPC) with a specific surface area of 2202.96 m 2  g⁻ 1 and a nitrogen doping level of 12.45 at.%, providing a plethora of physical and chemical adsorption sites for Zn 2+ storage. The resulting H-NPC exhibits a notable capacity of 256.7 mAh g −1 at 0.5 A g −1 , achieving a maximum energy density of 213 Wh kg −1 at 450 W kg −1 power density, alongside an extended service life with 91.4 % capacity retention over 10,000 cycles. Density functional theory calculations reveal the role of high nitrogen doping in enhancing the reversible adsorption/desorption of Zn 2+ , augmenting H-NPC's electrical conductivity, electron density at zincophilic active sites, and reducing the energy barrier for Zn 2+ adsorption. This study emphasizes the crucial role of incorporating large specific surface areas and abundant nitrogen atoms into carbon electrodes with the aim of innovating high-efficiency aqueous zinc ion capacitor systems and provides a novel idea for designing new carbon-based materials.

MATERIALS

Shall we send you a message when we have discounts available?

Remind me later

Thank you! Please check your email inbox to confirm.

Oops! Notifications are disabled.