Chen Ying-Chu, Hsu Yu-Kuei
China-UK Low Carbon College, Shanghai Jiao Tong University, No. 3, Yinlian Road, Lingang, Shanghai 201306, People's Republic of China.
Nanoscale. 2020 Jul 14;12(26):14290-14297. doi: 10.1039/d0nr03004j. Epub 2020 Jul 1.
To address the longstanding issue of conventional supercapacitors, viz. their energy and power deliveries are largely attenuated by the poor packing density of particularly the active electrodes, an ultracompact yet porous monolithic electrode is put forward in the present study. Particularly, it is built on electroactive α'-NaVO with the areal mass loading amounting to 33.24 mg cm densely packed into a 330-μm-thick carbon cloth and more importantly, with a hierarchical meso-/nano-pore structure in favor of the ion transport throughout this 330 μm-thick α'-NaVO/CC heavy electrode. In such context, a series of superior performances including the areal, gravimetric and volumetric capacitances reaching 12.47 F cm, 375.2 F g and 377.93 F cm, and the energy and power densities amounting to 1.38 mW h cm and 34.1 mW cm are successfully delivered by this compact monolith at the electrode- and device-level, respectively, altogether outperforming significantly those of additional modern and promising electrodes and energy storage devices reported in the literature.