Ouyang Jie, Zhang Mengmeng, Xiong Wanning, Zhou Liangliang, Zhao Linlin, Li Zejun, Zhou Cui, Chen Hong, Luo Yongfeng, Fang Shaoli, Baughman Ray H
Hunan Province Key Laboratory of Materials Surface & Interface Science and Technology, College of Science, Material Science and Engineering School, Central South University of Forestry and Technology, Changsha, Hunan 410004, PR China.
The Alan G. MacDiarmid NanoTech Institute, The University of Texas at Dallas, Richardson, TX 75080, USA.
J Colloid Interface Sci. 2024 Oct;671:145-153. doi: 10.1016/j.jcis.2024.05.172. Epub 2024 May 23.
Wood-derived carbon, with its strong tracheid array structure, is an ideal material for use as a self-supporting electrode in supercapacitors. By leveraging the inherent through pore structure and surface affinity found in wood tracheids, we successfully engineered a highly spatially efficient cube-templated porous carbon framework inside carbonized wood tracheid cavities through precise control over precursor crystallization temperatures. This innovative cubic channel architecture effectively maximizes up to (79 ± 1)% of the cavity volume in wood-derived carbon while demonstrating exceptional hydrophilicity and high conductivity properties, facilitating the development of supercapacitors with enhanced areal/volumetric capacitances (2.65F cm/53.0F cm at 5.0 mA cm) as well as superior areal/volumetric energy densities (0.37 mWh cm/7.36 mWh cm at 2.5 mW cm). The fabrication of these cube-templated channels with high cube filling content is not only simple and precisely controllable, but also environmentally friendly. The proposed method eliminates the conventional acid-base treatment process for pore formation, facilitating the rapid development and practical implementation of thick electrodes with superior performance in supercapacitors. Moreover, it offers a universal research approach for the commercialization of wood-derived thick electrodes.
木质碳具有坚固的管胞阵列结构,是用作超级电容器自支撑电极的理想材料。通过利用木材管胞中固有的通孔结构和表面亲和力,我们通过精确控制前驱体结晶温度,成功地在碳化木材管胞腔内设计了一种空间高效的立方模板化多孔碳框架。这种创新的立方通道结构有效地将木质碳中高达(79±1)%的腔体积最大化,同时展现出优异的亲水性和高导电性,有助于开发具有增强面积/体积电容(在5.0 mA cm时为2.65F cm/53.0F cm)以及优异面积/体积能量密度(在2.5 mW cm时为0.37 mWh cm/7.36 mWh cm)的超级电容器。这些具有高立方填充率的立方模板化通道的制造不仅简单且可控,而且环保。所提出的方法省去了传统的酸碱处理造孔过程,有助于快速开发并实际应用在超级电容器中具有优异性能的厚电极。此外,它为木质厚电极的商业化提供了一种通用的研究方法。