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Engineered S-scheme g-C 3 N 4 /MnO 2 heterostructures for integrated photo-rechargeable supercapacitors with enhanced energy storage performance

超级电容器 材料科学 电容 储能 异质结 光电子学 制作 纳米技术 光致发光 计算机数据存储 载流子 光电阴极 氧气储存 电化学能量转换 析氧 电荷(物理) 电极 电压 电化学 开尔文探针力显微镜 扩散电容
作者
P. Chinnappan Santhosh,Suresh Jayakumar,A.V. Radhamani
出处
期刊:Nanoscale [Royal Society of Chemistry]
卷期号:18 (1): 351-365
标识
DOI:10.1039/d5nr03958d
摘要

Engineering a two-in-one multifunctional device that couples energy conversion and storage offers a smarter strategy to address the current global energy crisis while reducing reliance on grid electricity. Photo-rechargeable supercapacitors are perfect devices for the storage of light-induced electrochemical energy, garnering increasing attention as the next-generation energy storage technology. This study presents a novel 2D/1D g-C3N4/MnO2-based photocathode architecture, reported for the first time, for the fabrication of a solid-state photo-rechargeable supercapacitor device. Here, g-C3N4 functions as the light-capturing component, while MnO2 acts as the primary charge-storing element for the device. Photoluminescence (PL) results confirm that the MnO2/g-C3N4 S-scheme architecture promotes efficient photoexcited charge separation and suppresses their recombination. Upon light illumination, the optimized device exhibits a ∼23% enhancement in areal capacitance, compared to its performance in the dark at 0.7 mA cm-2. Under light exposure, the fabricated device retains double its areal capacitance after 600 cycles and achieves 100% retention after 2000 cycles under dark conditions, highlighting its outstanding cycling stability. This remarkable performance is ascribed to the presence of oxygen vacancy-mediated trap states in MnO2, which reduce charge carrier recombination during light illumination and facilitate charge transfer kinetics. The proposed S-scheme charge transfer mechanism is further validated by the combined evidence from Scanning Kelvin Probe (SKP) and Mott-Schottky measurements. These findings emphasize the promise of the g-C3N4/MnO2 S-scheme heterojunction for efficient light-assisted energy storage, making a significant advancement for an emerging class of materials. As the proof-of-concept, the device powered a red LED for 33 s in the dark and for up to 43 s under light illumination.
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