Dutta Pronoy, Deb Sujit Kumar, Patra Amalika, Karim Golam Masud, Majumder Abhisek, Kumar Pradip, Iyer Parameswar Krishnan, Padma Narayanan, Maiti Uday Narayan
Department of Physics, Indian Institute of Technology Guwahati, Guwahati, Assam, 781039, India.
CSIR-Advanced Materials and Processes Research Institute (AMPRI), Bhopal, 462026, India.
Small. 2024 Aug;20(35):e2400119. doi: 10.1002/smll.202400119. Epub 2024 Apr 26.
Concomitant achievement of all three performance pillars of a supercapacitor device, namely gravimetric, areal, and volumetric capacitance is a grand challenge. Nevertheless, its fulfilment is indispensable for commercial usage. Although, high compactness is the fundamental requirement to achieve high volumetric performance, it severely affects ion transportation in thick electrodes. Such trade-off makes it extremely challenging to realize very high areal and volumetric performance simultaneously. Here, a collapsed hydrogel strategy is introduced to develop MXene/cellulose nanofiber (CNF) based densified electrodes that offer excellent ion transportation despite a massive increase in areal mass loading (>70 mg cm). Quasi-oriented MXene/CNF (MXCF) hydrogels are produced through an electric field-guided co-assembly technique. Ambient dehydration of these hydrogels incorporates numerous pores in the resultant compact electrodes due to crumpling of the MXene sheets, while CNF ensures connectivity among the locally blocked pores in different length scales. The resultant collapsed MXCF densified electrode shows a remarkably high areal capacitance of 16 F cm while simultaneously displaying a high volumetric capacitance of 849.8 F cm at an ultrahigh mass loading of up to 73.4 mg cm. The universality of strategy, including the co-assembly of hydrogel and its collapse, is further demonstrated to develop high-performance asymmetric and wearable devices.
同时实现超级电容器器件的所有三个性能支柱,即重量电容、面积电容和体积电容,是一项巨大的挑战。然而,实现这一点对于商业应用来说是不可或缺的。尽管高紧凑性是实现高体积性能的基本要求,但它严重影响了厚电极中的离子传输。这种权衡使得同时实现非常高的面积和体积性能极具挑战性。在此,引入了一种坍塌水凝胶策略来开发基于MXene/纤维素纳米纤维(CNF)的致密电极,尽管面积质量负载大幅增加(>70 mg/cm²),但仍能提供出色的离子传输。通过电场引导的共组装技术制备了准取向的MXene/CNF(MXCF)水凝胶。这些水凝胶的环境脱水由于MXene片层的褶皱在所得致密电极中引入了大量孔隙,而CNF确保了不同长度尺度上局部堵塞孔隙之间的连通性。所得坍塌的MXCF致密电极在高达73.4 mg/cm²的超高质量负载下显示出16 F/cm²的显著高面积电容,同时显示出849.8 F/cm³的高体积电容。该策略的通用性,包括水凝胶的共组装及其坍塌,进一步被证明可用于开发高性能不对称和可穿戴设备。