SEUIR Repository

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

Show simple item record

dc.contributor.author Kumar, Sunil
dc.contributor.author Patra, Niranjan
dc.contributor.author Hossain, Ismail
dc.contributor.author Thakur, Abhinay
dc.contributor.author Jaseetharan, T.
dc.contributor.author Gopal Shimpi, Navinchandra
dc.date.accessioned 2025-01-24T09:59:27Z
dc.date.available 2025-01-24T09:59:27Z
dc.date.issued 2025-04-15
dc.identifier.citation Sunil Kumar; Niranjan Patra; Ismail Hossain; Abhinay Thakur; T. Jaseetharan; Navinchandra Gopal Shimpi, Materials Research Bulletin, Volume 184, April 2025, 113223 en_US
dc.identifier.uri https://doi.org/10.1016/j.materresbull.2024.113223
dc.identifier.uri http://ir.lib.seu.ac.lk/handle/123456789/7297
dc.description.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. en_US
dc.language.iso en_US en_US
dc.publisher Elsevier en_US
dc.subject Photoanode Materials en_US
dc.subject Solar Energy en_US
dc.subject Plasmonic en_US
dc.subject Carbon / Graphene en_US
dc.subject Hexagonal-Boron Nitride en_US
dc.title Exponential developments of quantum dots ecosystem for solar energy conversion and photocatalytic reactions: From photoanode design to renewable energy applications en_US
dc.type Article en_US


Files in this item

This item appears in the following Collection(s)

  • Research Articles [934]
    THESE ARE RESEARCH ARTICLES OF ACADEMIC STAFF, PUBLISHED IN JOURNALS AND PROCEEDINGS ELSWHERE

Show simple item record

Search SEUIR


Advanced Search

Browse

My Account