State key laboratory base of eco-chemical Engineering, College of Chemical Engineering, Qingdao University of Science and Technology, 53 Zhengzhou Road, Qingdao, Shandong province 266042, PR China.
State key laboratory base of eco-chemical Engineering, College of Chemical Engineering, Qingdao University of Science and Technology, 53 Zhengzhou Road, Qingdao, Shandong province 266042, PR China; Qingdao Industrial Energy Storage Research Institute, Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao 266101, China; Shandong Energy Institute, Qingdao 266101, China.
Int J Biol Macromol. 2024 Sep;276(Pt 2):134003. doi: 10.1016/j.ijbiomac.2024.134003. Epub 2024 Jul 18.
Flexible hybrid hydrogels (GO/AC/CNFn) with a 3D porous network structure and superhydrophilic property are synthesized by cross-linking and self-assembling graphene oxide (GO) and activated carbon (AC) with cellulose nanofiber (CNF) during microwave hydrothermal process. In this ternary composite hydrogel, CNF molecular chains bridge GO sheets to build the 3D skeleton and anchor AC particles within GO nanosheets, forming ordered architecture of GO/AC/CNFn hydrogel that simultaneously possesses high flexibility and excellent mechanical integrity. When using this hydrogel as additive-free electrode, the presence of AC provides developed porous structure and density to promote high volumetric capacitance, while the heteroatom nitrogen groups tune the surface property of the composite with increased electrical conductivity. Benefited from the optimized structure, GO/AC/CNF electrode delivers an ultra-high mass specific capacitance of 627 F/g and volume specific capacitance of 618 F/cm at 0.5 A/g in three-electrode system in 1 M HSO electrolyte, which is kinetically demonstrated to be essentially originated from the capacitive contributions. The energy density reaches 32.2 Wh/kg at a power density of 150 W/kg for the fabricated flexible solid-state symmetric supercapacitor. Moreover, the obtained flexible device could sensitively response at varied physiological signals, shedding fresh lights on their potential applications in signal sensors and portable electronics.
具有 3D 多孔网络结构和超亲水性的柔性杂化水凝胶(GO/AC/CNFn)是通过在微波水热过程中交联和自组装氧化石墨烯(GO)和活性炭(AC)与纤维素纳米纤维(CNF)合成的。在这种三元复合水凝胶中,CNF 分子链桥接 GO 片以构建 3D 骨架,并将 AC 颗粒锚定在 GO 纳米片内,形成具有高柔韧性和优异机械完整性的 GO/AC/CNFn 水凝胶的有序结构。当将这种水凝胶用作无添加剂电极时,AC 的存在提供了发达的多孔结构和密度,以促进高体积电容,而杂原子氮基团通过增加电导率来调节复合的表面性质。得益于优化的结构,GO/AC/CNF 电极在三电极系统中在 1 M HSO 电解质中以 0.5 A/g 的电流密度下表现出超高的质量比电容 627 F/g 和体积比电容 618 F/cm,动力学研究表明其本质上源于电容贡献。对于制造的柔性固态对称超级电容器,在 150 W/kg 的功率密度下,能量密度达到 32.2 Wh/kg。此外,所获得的柔性器件可以对各种生理信号做出敏感响应,为它们在信号传感器和便携式电子产品中的潜在应用提供了新的思路。