Gouder A, Podjaski F, Jiménez-Solano A, Kröger J, Wang Y, Lotsch B V
Max Planck Institute for Solid State Research Heisenbergstr. 1 70569 Stuttgart Germany
Department Chemistry, Ludwig-Maximilians-University Butenandstraße 5-13 81377 Munich Germany.
Energy Environ Sci. 2023 Feb 15;16(4):1520-1530. doi: 10.1039/d2ee03409c. eCollection 2023 Apr 12.
Solar batteries capable of harvesting sunlight and storing solar energy present an attractive vista to transition our energy infrastructure into a sustainable future. Here we present an integrated, fully earth-abundant solar battery based on a bifunctional (light absorbing and charge storing) carbon nitride (K-PHI) photoanode, combined with organic hole transfer and storage materials. An internal ladder-type hole transfer cascade a transport layer is used to selectively shuttle the photogenerated holes to the PEDOT:PSS cathode. This concept differs from previous designs such as light-assisted battery schemes or photocapacitors and allows charging with light during both electrical charge and discharge, thus substantially increasing the energy output of the cell. Compared to battery operation in the dark, light-assisted (dis)charging increases charge output by 243%, thereby increasing the electric coulombic efficiency from 68.3% in the dark to 231%, leading to energy improvements of 94.1% under illumination. This concept opens new vistas towards compact, highly integrated devices based on multifunctional, carbon-based electrodes and separators, and paves the way to a new generation of earth-abundant solar batteries.
能够收集阳光并储存太阳能的太阳能电池为将我们的能源基础设施转变为可持续未来提供了一个诱人的前景。在此,我们展示了一种基于双功能(光吸收和电荷存储)氮化碳(K-PHI)光阳极,并结合有机空穴传输和存储材料的集成、完全基于地球丰富元素的太阳能电池。一种内部梯型空穴传输级联——一种传输层,用于选择性地将光生空穴输送到PEDOT:PSS阴极。这一概念不同于以前的设计,如光辅助电池方案或光电器件,并允许在充电和放电过程中都用光照进行充电,从而大幅提高电池的能量输出。与在黑暗中运行的电池相比,光辅助(充)放电使电荷输出增加了243%,从而使库仑效率从黑暗中的68.3%提高到231%,在光照下能量提高了94.1%。这一概念为基于多功能碳基电极和隔膜的紧凑型、高度集成设备开辟了新的前景,并为新一代基于地球丰富元素的太阳能电池铺平了道路。