Exponential developments of quantum dots ecosystem for solar energy conversion and photocatalytic reactions: From photoanode design to renewable energy applications

IF 5.7 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Research Bulletin Pub Date : 2025-04-01 Epub Date: 2024-11-23 DOI:10.1016/j.materresbull.2024.113223
Sunil Kumar , Niranjan Patra , Ismail Hossain , Abhinay Thakur , T. Jaseetharan , Navinchandra Gopal Shimpi
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Abstract

Quantum dot-sensitized solar cells (QDSSCs) present a promising approach for advancing solar energy conversion due to their tunable optical properties, quantum confinements and superior charge carrier dynamics. This review explores recent innovations in photoanode materials, focusing on the integration of functional quantum dots such as CdS, CdSe, PbS, and other novel QD materials like nickel phosphide, plasmonic, carbon/graphene, hexagonal-boron nitride, and black phosphorus, etc. Several studies show that optimally configured QDSSCs can reach power conversion efficiencies (PCE) of up to 8.6% in systems sensitized with PbS/CdS QDs on ZnO nanorods, marking significant advancements in light harvesting and energy conversion capabilities. Notably, core-shell architectures such as TiO₂-SiO₂ have been shown to enhance light scattering and optimize electron transfer pathways, resulting in PCEs of approximately 3.6%, a substantial increase over conventional designs. The review highlights the design of photoanodes with enhanced surface area, structural diversity, and light absorption, emphasizing the role of multi-band energetics, inter-band transitions and composite interactions. Additionally, this review offers insights into how optimized photoanode morphologies and QD coupling can mitigate surface charge recombination, enhance catalytic activity, and elevate green hydrogen production. By addressing key developments in material engineering, this work aims to guide future research towards more efficient and sustainable energy technologies.

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太阳能转换和光催化反应量子点生态系统的指数发展:从光阳极设计到可再生能源应用
量子点敏化太阳能电池(QDSSCs)由于其可调谐的光学特性、量子约束和优越的载流子动力学特性,为推进太阳能转换提供了一种很有前途的方法。本文综述了近年来在光阳极材料方面的创新,重点介绍了功能量子点(如CdS、CdSe、PbS)和其他新型量子点材料(如磷化镍、等离子体、碳/石墨烯、六方氮化硼和黑磷等)的集成。一些研究表明,在ZnO纳米棒上使用PbS/CdS量子点敏化的系统中,优化配置的QDSSCs可以达到高达8.6%的功率转换效率(PCE),标志着光收集和能量转换能力的显著进步。值得注意的是,tio_2 - sio_2等核壳结构已被证明可以增强光散射并优化电子转移途径,导致pce约为3.6%,比传统设计大幅增加。本文重点介绍了具有增强表面面积、结构多样性和光吸收的光阳极的设计,强调了多带能量学、带间跃迁和复合相互作用的作用。此外,本综述还提供了优化的光阳极形态和QD耦合如何减轻表面电荷重组、增强催化活性和提高绿色氢气产量的见解。通过解决材料工程的关键发展,这项工作旨在指导未来研究更高效和可持续的能源技术。
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来源期刊
Materials Research Bulletin
Materials Research Bulletin 工程技术-材料科学:综合
CiteScore
9.80
自引率
5.60%
发文量
372
审稿时长
42 days
期刊介绍: Materials Research Bulletin is an international journal reporting high-impact research on processing-structure-property relationships in functional materials and nanomaterials with interesting electronic, magnetic, optical, thermal, mechanical or catalytic properties. Papers purely on thermodynamics or theoretical calculations (e.g., density functional theory) do not fall within the scope of the journal unless they also demonstrate a clear link to physical properties. Topics covered include functional materials (e.g., dielectrics, pyroelectrics, piezoelectrics, ferroelectrics, relaxors, thermoelectrics, etc.); electrochemistry and solid-state ionics (e.g., photovoltaics, batteries, sensors, and fuel cells); nanomaterials, graphene, and nanocomposites; luminescence and photocatalysis; crystal-structure and defect-structure analysis; novel electronics; non-crystalline solids; flexible electronics; protein-material interactions; and polymeric ion-exchange membranes.
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