Microsupercapacitive Stone Module for Natural Energy Storage

被引:13
作者
Back, Seunghyun [1 ]
Park, Jung Hwan [2 ]
Kang, Bongchul [1 ]
机构
[1] Kookmin Univ, Sch Mech Engn, Seoul 02707, South Korea
[2] Kumoh Natl Inst Technol, Dept Aeronaut Mech & Elect Convergence Engn, Dept Mech Engn, Gumi 39177, Gyeongbuk, South Korea
基金
新加坡国家研究基金会;
关键词
natural energy-storage interface; laser-material interaction; stone-based electronics; explosive reduction sintering; porous structures; 3D MICRO-SUPERCAPACITORS; HIGH-PERFORMANCE; ON-CHIP; FABRICATION; ARRAYS; ELECTRODES; DESIGN; NANOPARTICLES; ELECTROLYTES; CHALLENGES;
D O I
10.1021/acsnano.2c01753
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Increasing accessibility of energy storage platforms through user interface is significant in realizing autonomous power supply systems because they can be expanded in multidimensional directions to enable pervasive and customized energy storage systems (ESSs) for portable and miniaturized electronics. Herein, we implemented a high-performance asymmetric microsupercapacitor (MSC) on a natural stone surface, which represents a class of omnipresent, low-cost, ecofriendly, and recyclable energy storage interface for sustainable and conveniently accessible ESSs. Highly conductive and porous Cu electrodes were robustly fabricated on a rough marble substrate via explosive reduction-sintering of cost-effective CuO nanoparticles by using instantaneous, inexpensive, and simple laser-material interaction (LMI) technology. Faradaic Fe3O, and capacitive Mn3O4 were sequentially electroplated on the surface of the porous Cu interdigitated electrodes to demonstrate hybrid MSC with a high-potential window and specific area. Despite the irregular geometry of the stone interface, the laser-induced MSC module produced high areal energy density and power density (6.55 mu Wh cm(-2) and 1.2 mW cm(-2), respectively) without the use of complex integrated circuit fabrication methods, such as photolithography, vacuum deposition, or chemical etching. The fabricated MSC stone cells were successfully scaled up via serial or parallel connections to achieve the concept of a scalable energy storage wall applicable as a three-dimensional energy station inside or outside a whole-building interface. The excellent durability of the MSC wall was confirmed by harsh-impact tests, and it was attributed to the robustness of the LMI-derived Cu current collectors and electroplated MSC metal oxides. Furthermore, a natural stone substrate with high mechanical toughness could be recycled by grinding the MSC conductors and active layers, thus considerably reducing the environmental pollutants and helping to realize green electronics.
引用
收藏
页码:11708 / 11719
页数:12
相关论文
共 63 条
[1]   Vibrational, electrical, and ion transport properties of PVA-LiClO4-sulfolane electrolyte with high cationic conductivity [J].
Abarna, S. ;
Hirankumar, G. .
IONICS, 2017, 23 (07) :1733-1743
[2]   Turning Trash into Treasure: Additive Free MXene Sediment Inks for Screen-Printed Micro-Supercapacitors [J].
Abdolhosseinzadeh, Sina ;
Schneider, Rene ;
Verma, Anand ;
Heier, Jakob ;
Nuesch, Frank ;
Zhang, Chuanfang .
ADVANCED MATERIALS, 2020, 32 (17)
[3]   Role of electrolytes on the electrochemical characteristics of Fe3O4/MXene/RGO composites for supercapacitor applications [J].
Arun, Thirumurugan ;
Mohanty, Ankita ;
Rosenkranz, Andreas ;
Wang, Bo ;
Yu, Jinhong ;
Morel, Mauricio J. ;
Udayabhaskar, R. ;
Hevia, Samuel A. ;
Akbari-Fakhrabadi, Ali ;
Mangalaraja, R., V ;
Ramadoss, Ananthakumar .
ELECTROCHIMICA ACTA, 2021, 367
[4]   Carbons and Electrolytes for Advanced Supercapacitors [J].
Beguin, Francois ;
Presser, Volker ;
Balducci, Andrea ;
Frackowiak, Elzbieta .
ADVANCED MATERIALS, 2014, 26 (14) :2219-2251
[5]   Capacitive energy storage in micro-scale devices: recent advances in design and fabrication of micro-supercapacitors [J].
Beidaghi, Majid ;
Gogotsi, Yury .
ENERGY & ENVIRONMENTAL SCIENCE, 2014, 7 (03) :867-884
[6]   On chip MnO2-based 3D micro-supercapacitors with ultra-high areal energy density [J].
Bounor, Botayna ;
Asbani, Bouchra ;
Douard, Camille ;
Favier, Frederic ;
Brousse, Thierry ;
Lethien, Christophe .
ENERGY STORAGE MATERIALS, 2021, 38 :520-527
[7]   Regulating Voltage Window and Energy Density of Aqueous Asymmetric Supercapacitors by Pinecone-Like Hollow Fe2O3/MnO2 Nano-Heterostructure [J].
Chen, Lingfang ;
Huang, Jun ;
Zeng, Rong ;
Xiong, Yushuai ;
Wei, Junchao ;
Yuan, Kai ;
Chen, Yiwang .
ADVANCED MATERIALS INTERFACES, 2020, 7 (02)
[8]   High-performance pseudocapacitive micro-supercapacitors with three-dimensional current collector of vertical ITO nanowire arrays [J].
Du, Jingwei ;
Zhao, Yirong ;
Zhang, Zemin ;
Mu, Xuemei ;
Jiang, Xiao ;
Huang, Baoyu ;
Zhang, Yaxiong ;
Zhang, Shengming ;
Zhang, Zhenxing ;
Xie, Erqing .
JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (11) :6220-6227
[9]   Revealing the Impact of Hierarchical Pore Organization in Supercapacitor Electrodes by Coupling Ionic Dynamics at Micro- and Macroscales [J].
Dvoyashkin, Muslim ;
Leistenschneider, Desiree ;
Evans, Jack D. ;
Sander, Miriam ;
Borchardt, Lars .
ADVANCED ENERGY MATERIALS, 2021, 11 (24)
[10]   Scalable fabrication of high-power graphene micro-supercapacitors for flexible and on-chip energy storage [J].
El-Kady, Maher F. ;
Kaner, Richard B. .
NATURE COMMUNICATIONS, 2013, 4