Fatima Kaniz, Pandith Altaf Hussain, Manzoor Taniya, Qureashi Aaliya
Laboratory of Nanoscience and Quantum Computations, Department of Chemistry, University of Kashmir, Hazratbal, Srinagar 190006, J&K, India.
ACS Omega. 2023 Feb 23;8(9):8865-8875. doi: 10.1021/acsomega.3c00333. eCollection 2023 Mar 7.
Graphene nanocomposites have emerged as potential photoanode materials for increased performance of the dye-sensitized solar cells (DSSCs) via charge transfer. Various metal-oxide-decorated graphene nanocomposites have widespread applications in energy devices, such as solar cells, fuel cells, batteries, sensors, electrocatalysis, and photocatalysis. However, the possible role of these composites in DSSC applications has largely remained unexplored. Herein, we studied a SbO-decorated graphene-D-π-π-A sensitized TiO nanocomposite (dye-(TiO)/SbO@GO) as a model multi-junction light-harvesting system and examined the impact of various π-bridges on the optical and photovoltaic properties of the push-pull dye system employed in this light-harvesting system. We have shown that by changing the spacer unit, the light sensitivity of nanocomposites can be varied from visible to near-infrared wavelengths. Furthermore, with the integration of metal-oxide-decorated graphene nanocomposites on D-π-π-A systems and D-π-A systems, composite photoelectrodes displayed better optical and photovoltaic characteristics with an enhanced absorption spectrum in the wavelength range of 800-1000 nm. The performance of the D-π-π-A system has been evaluated in terms of various photovoltaic parameters such as the highest occupied molecular orbital-lowest unoccupied molecular orbital energy gaps, excited-state oxidation potential ( ), free energy of electron injection ( ), total reorganization energy (λ), and open-circuit voltage ( ). This work throws light on the current trends and the future opportunities in graphene-metal oxide nanocomposite-based DSSCs for better harvesting of the solar spectrum and better performance of solar devices.
石墨烯纳米复合材料已成为潜在的光阳极材料,可通过电荷转移提高染料敏化太阳能电池(DSSC)的性能。各种金属氧化物修饰的石墨烯纳米复合材料在能量装置中有着广泛应用,如太阳能电池、燃料电池、电池、传感器、电催化和光催化等。然而,这些复合材料在DSSC应用中的潜在作用在很大程度上仍未得到探索。在此,我们研究了一种SbO修饰的石墨烯-D-π-π-A敏化TiO纳米复合材料(染料-(TiO)/SbO@GO)作为模型多结光捕获系统,并研究了各种π桥对该光捕获系统中采用的推挽染料体系的光学和光伏性能的影响。我们已经表明,通过改变间隔单元,纳米复合材料的光灵敏度可以从可见光波长变化到近红外波长。此外,通过将金属氧化物修饰的石墨烯纳米复合材料集成到D-π-π-A体系和D-π-A体系上,复合光电极在800-1000nm波长范围内具有增强的吸收光谱,显示出更好的光学和光伏特性。已根据各种光伏参数对D-π-π-A体系的性能进行了评估,如最高占据分子轨道-最低未占据分子轨道能隙、激发态氧化电位( )、电子注入自由能( )、总重组能(λ)和开路电压( )。这项工作揭示了基于石墨烯-金属氧化物纳米复合材料的DSSC在更好地捕获太阳光谱和提高太阳能装置性能方面的当前趋势和未来机遇。