
In a major development for reinforcing renewable power era improvement, the Faculty of Engineering of the Hong Kong College of Science and Expertise (HKUST) has taken the lead in breaking by way of research of the nanoscale properties of perovskite photo voltaic cells (PSCs). This initiative has resulted within the improvement of extra environment friendly and sturdy cells, poised to considerably diminish prices and broaden purposes, thereby connecting scientific analysis with the wants of the enterprise group.
In comparison with standard silicon photo voltaic cells, PSCs can doubtlessly attain increased energy conversion efficiencies and have the utilization of lower-cost supplies and extra sustainable manufacturing processes. Subsequently, PSCs have develop into a cutting-edge analysis space in power and sustainability.
Nonetheless, the long-term stability of PSCs when uncovered to mild, humidity, and thermomechanical stressors stays a serious hurdle in commercialization. One key issue inflicting instability is the inhomogeneous distribution of cations in perovskite skinny movies, which may set off an unfavored section transition that steadily degrades the gadgets.
A analysis group led by Prof. Zhou Yuanyuan, Affiliate Professor of the Division of Chemical and Organic Engineering and Affiliate Director of the Vitality Institute at HKUST discovered that the nanoscale groove traps on the perovskite grain’s triple junctions function geometric traps that seize cations and retard their interdiffusion in direction of homogenization.
The analysis group used a rational chemical additive method generally known as butylammonium acetate and efficiently lowered the depth of those nanoscale groove traps by an element of three. The resultant cation-homogenized PSCs confirmed an improved effectivity of near 26%. Extra importantly, these gadgets reveal advantageous stabilities underneath numerous standardized take a look at protocols.

The first corresponding writer of the current examine, Prof. Zhou stated “Most present research concentrate on the microscopic or macroscopic ranges to enhance perovskite photo voltaic cells. Our group, nonetheless, investigated particulars right down to the nanoscale in these PSCs.
“We used a sophisticated characterization method known as cathodoluminescence imaging to look at the relation between these nanoscale groove traps and cation distribution. This elementary method guided our engineering of those nanogrooves to homogenize the cation distribution and enhance the cell efficiency”.
The findings had been printed within the journal Nature Nanotechnology, in a paper titled “Nanoscopic Cross-Grain Cation Homogenization in Perovskite Photo voltaic Cells.”
HKUST Postdoctoral fellow Dr. Hao Mingwei, the primary writer of this work, added, “Perovskite is a soft-lattice materials. All through our experiments, we discovered notable structural options in perovskite skinny movies which are remarkably completely different from these in standard supplies. We’re making each effort to elucidate the associated mechanisms to advertise the industrial viability of perovskite photo voltaic cells, pushing ahead the event of the renewable power market with this potential game-changer.”
Prof. Mahshid Ahmadi from the College of Tennessee, Knoxville is the co-corresponding writer of this work. Different collaborators are from Yale College, Oak Ridge Nationwide Laboratory, Yonsei College, and Hong Kong Baptist College.
Extra data:
Mingwei Hao et al, Nanoscopic cross-grain cation homogenization in perovskite photo voltaic cells, Nature Nanotechnology (2025). DOI: 10.1038/s41565-025-01854-y
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Crucial nanoscale phenomena unveiled for extra environment friendly and steady perovskite photo voltaic cells (2025, February 26)
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