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	<title>self-assembled monolayers &#8211; Science</title>
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	<title>self-assembled monolayers &#8211; Science</title>
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		<title>Nickel Oxide Breakthrough Pushes Perovskite Solar Modules Toward Commercial Reality</title>
		<link>https://scienmag.com/nickel-oxide-breakthrough-pushes-perovskite-solar-modules-toward-commercial-reality/</link>
		
		<dc:creator><![CDATA[Denise Maddox]]></dc:creator>
		<pubDate>Sun, 20 Sep 2026 22:43:48 +0000</pubDate>
				<category><![CDATA[Technology and Engineering]]></category>
		<category><![CDATA[advances in perovskite]]></category>
		<category><![CDATA[buried interface]]></category>
		<category><![CDATA[certified power conversion efficiency in solar modules]]></category>
		<category><![CDATA[chemical bath deposition]]></category>
		<category><![CDATA[chemical bath deposition for nickel oxide]]></category>
		<category><![CDATA[crystallization kinetics]]></category>
		<category><![CDATA[hole transport layer]]></category>
		<category><![CDATA[inverted (p-i-n) perovskite solar cell architecture]]></category>
		<category><![CDATA[ISOS-L-1I protocol]]></category>
		<category><![CDATA[large-area perovskite module manufacturing]]></category>
		<category><![CDATA[nickel oxide]]></category>
		<category><![CDATA[nickel oxide hole-selective layer]]></category>
		<category><![CDATA[perovskite solar cell commercialization challenges]]></category>
		<category><![CDATA[perovskite solar cell efficiency]]></category>
		<category><![CDATA[Perovskite Solar Cells]]></category>
		<category><![CDATA[photovoltaic stability]]></category>
		<category><![CDATA[potassium tartrate coordination]]></category>
		<category><![CDATA[power conversion efficiency]]></category>
		<category><![CDATA[scalable perovskite module production]]></category>
		<category><![CDATA[self-assembled monolayers]]></category>
		<category><![CDATA[solar modules]]></category>
		<category><![CDATA[stability and electronic quality of nickel oxide films]]></category>
		<category><![CDATA[thin-film deposition techniques for solar applications]]></category>
		<category><![CDATA[transparent conductive films in solar cells]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=203640</guid>

					<description><![CDATA[A coordination-regulated nickel oxide deposition strategy enables certified 27.35% perovskite cell efficiency, 23.42% module efficiency and durable large-area operation.]]></description>
										<content:encoded><![CDATA[<p>Perovskite solar cells have long dazzled laboratory audiences with efficiencies that keep climbing year after year, yet the technology has stubbornly struggled to translate those record numbers into large-area modules that can be manufactured reliably at scale. Now, a research team led by scientists at Nankai University in Tianjin, China, reports a solution to one of the most stubborn bottlenecks in the field: how to deposit a uniform, reactive nickel oxide hole-selective layer over large surfaces without sacrificing the electronic quality that makes small-area cells so spectacular. Writing in Nature Photonics, the team describes a coordination-regulated chemical bath deposition strategy that produces dense, conformal nickel oxide films, and uses them to demonstrate a certified power conversion efficiency of 27.35 percent in small-area inverted cells, along with module efficiencies of 23.42 percent on a 17.7-square-centimeter mini-module and 21.97 percent on an 81.5-square-centimeter module.</p>
<p>The importance of nickel oxide in inverted, or p-i-n, perovskite solar cells is difficult to overstate. In this architecture, the light-absorbing perovskite layer sits atop a hole-transporting layer, and every photon-generated hole must pass cleanly through that buried interface before it can be collected. Nickel oxide is prized for its chemical stability, wide bandgap, deep valence band and low cost, but depositing it uniformly over large areas has always involved a painful trade-off. Solution-based chemical bath deposition can cover large, even textured substrates conformally, but the rapid, disorderly hydrolysis of nickel salts tends to produce films riddled with pinholes and aggregates. Vacuum techniques such as sputtering or atomic layer deposition offer denser films but are slower, more expensive and harder to marry with high-throughput manufacturing.</p>
<p>The Nankai-led team attacked the problem at the level of crystallization kinetics rather than after the fact. Their insight was to introduce potassium tartrate, a ligand that binds nickel ions into exceptionally stable coordination complexes in the deposition bath. By sequestering a fraction of the free nickel ions, the ligand suppresses the chaotic, uncontrolled aggregation that normally plagues chemical bath growth and halves the hydrolysis rate constant, slowing it to 0.124 liters per mole per minute. That seemingly modest number is the heart of the result: slower, more orderly crystallization gives the film time to nucleate evenly across the substrate and to grow into a dense, continuous layer rather than a patchwork of islands and voids.</p>
<p>The kinetic control pays off in a striking way at the nanoscale. The resulting films are composed of remarkably refined crystallites measuring just 4.8 nanometers. For most materials, smaller grains would sound like a disadvantage, but here the fine nanostructure is precisely the point. Shrinking the crystallites maximizes the density of grain boundaries reaching the surface, and each boundary terminates in hydroxyl groups. These hydroxyl terminations serve as robust chemical anchoring sites for self-assembled monolayers, the carbazole-based phosphonic acid molecules that have become the workhorses of modern perovskite photovoltaics. A denser carpet of anchoring sites allows the monolayer to form a chemically cohesive, defect-suppressed buried interface, where charge extraction is fast and non-radiative recombination is minimized.</p>
<p>The team backed this picture with extensive interfacial characterization and charge-carrier dynamics measurements on nickel oxide monolayer stacks, supported by density functional theory calculations and molecular dynamics simulations that probed the coordination chemistry and the energetics of monolayer attachment. The calculations and experiments together paint a consistent story: the potassium tartrate-regulated surface is not merely smoother, it is chemically better matched to the self-assembled monolayer, so the molecules graft uniformly instead of clustering on reactive patches. Fewer clustered molecules means fewer shunting pathways and fewer deep traps, which translates directly into higher open-circuit voltage and fill factor.</p>
<p>The device numbers speak for themselves. Champion inverted cells built on the treated nickel oxide reached a power conversion efficiency of 27.40 percent, and an independent certified measurement returned a reverse-scan efficiency of 27.35 percent, placing these single-junction cells among the very best inverted devices ever reported. More importantly for commercialization, the advantage survived scale-up. A 17.7-square-centimeter mini-module achieved 23.42 percent efficiency, and a substantially larger 81.5-square-centimeter module still delivered 21.97 percent. In the perovskite field, where efficiency typically collapses as area grows because coating non-uniformities and interconnect losses compound, retaining better than 22 percent on a module the size of a postcard is a genuine milestone.</p>
<p>Efficiency alone, however, has never been the sole barrier to market entry. Stability under continuous illumination and heat has haunted perovskite devices since their inception, and the buried interface is one of the most common sites of degradation, where ion migration and interfacial reactions quietly erode performance. Here too the coordination-regulated films excelled. Small-area devices retained 90 percent of their initial efficiency after 2,656 hours of operation, and the 17.7-square-centimeter mini-modules held more than 90 percent of their initial performance after 1,200 hours under the demanding ISOS-L-1I protocol, an internationally recognized stress test combining continuous illumination with elevated temperature and electrical bias. Such endurance figures suggest that the defect-suppressed buried interface is not just a transient efficiency boost but a structural improvement in device physics.</p>
<p>What makes the result particularly compelling from a manufacturing standpoint is that the underlying technique is inherently scalable. Chemical bath deposition is a low-temperature, low-cost, solution-based process that requires no vacuum equipment and can, in principle, coat substrates of arbitrary size and shape, including textured surfaces that evaporative methods struggle to cover. By solving the coverage-versus-reactivity trade-off inside the bath chemistry itself, the researchers have essentially upgraded the method from a laboratory curiosity to a credible industrial candidate. The approach is compatible with subsequent self-assembled monolayer deposition and standard perovskite coating steps, meaning it slots into existing p-i-n fabrication flows without requiring an architectural rethink.</p>
<p>The work also carries a broader lesson for the field. Much of the recent progress in perovskite photovoltaics has come from interfacial engineering, and the Nankai study demonstrates that the substrate beneath a self-assembled monolayer is not a passive bystander but an active determinant of how well that monolayer performs. Controlling the crystallization kinetics of the inorganic layer, right down to the density of surface hydroxyl groups, is a form of interface design that operates one level deeper than most molecular engineering campaigns. It hints that similar coordination-regulated strategies could improve other metal oxide transport layers, from tin oxide electron contacts to zinc-based alternatives, across both single-junction and tandem devices.</p>
<p>Challenges remain before perovskite modules based on this chemistry can leave the laboratory for the factory floor. Scaling from 81.5 square centimeters to full-sized panels will require maintaining the same kinetic control across even larger baths and faster throughput, and long-term field testing beyond accelerated laboratory protocols will be essential. Lead content, encapsulation and recycling logistics also loom over the entire perovskite enterprise. But by demonstrating certified 27.35 percent cell efficiency, 23.42 percent module efficiency and more than a thousand hours of stable module operation from a single, industrially friendly deposition process, the team has decisively narrowed the gap between what perovskites can do in principle and what they can do in production. The sun delivers more energy to Earth in an hour than humanity uses in a year; chemistry like this brings the devices needed to harvest it one large step closer to being cheap, durable and genuinely scalable.</p>
<p><strong>Subject of Research:</strong> Coordination-regulated chemical bath deposition of conformal nickel oxide hole-selective layers for efficient and stable perovskite solar modules</p>
<p><strong>Article Title:</strong> Scalable and conformal nickel oxide for efficient perovskite solar modules</p>
<p><strong>Article References:</strong> Yang, H., Wang, Y., Li, H., Wu, Y., Li, S., Han, X., Wang, D., Ding, Z., Han, Y., Zheng, Q., Chen, L., Du, Z., Alshahrani, T., Chen, C., Wang, X.-Y., Jiang, Y., &amp; Yuan, M. (2026). Scalable and conformal nickel oxide for efficient perovskite solar modules. <em>Nature Photonics</em>. <a href="https://doi.org/10.1038/s41566-026-02012-z" rel="noopener noreferrer">https://doi.org/10.1038/s41566-026-02012-z</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1038/s41566-026-02012-z" rel="noopener noreferrer">10.1038/s41566-026-02012-z</a></p>
<p><strong>Keywords:</strong> perovskite solar cells, nickel oxide, chemical bath deposition, self-assembled monolayers, hole transport layer, power conversion efficiency, solar modules, crystallization kinetics, buried interface, photovoltaic stability, potassium tartrate coordination, ISOS-L-1I protocol</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">203640</post-id>	</item>
		<item>
		<title>Electronic Resonance Boosted Molecule Improves Perovskite Solar Cell Performance</title>
		<link>https://scienmag.com/electronic-resonance-boosted-molecule-improves-perovskite-solar-cell-performance/</link>
		
		<dc:creator><![CDATA[Denise Maddox]]></dc:creator>
		<pubDate>Tue, 28 Jul 2026 01:53:17 +0000</pubDate>
				<category><![CDATA[Medicine]]></category>
		<category><![CDATA[Technology and Engineering]]></category>
		<category><![CDATA[chemical bonding strength to oxide surfaces]]></category>
		<category><![CDATA[device stability under heat and light]]></category>
		<category><![CDATA[donor-acceptor-donor molecular architecture]]></category>
		<category><![CDATA[interfacial charge extraction]]></category>
		<category><![CDATA[interfacial engineering for improved stability]]></category>
		<category><![CDATA[long-term perovskite solar cell performance]]></category>
		<category><![CDATA[molecular dipole engineering]]></category>
		<category><![CDATA[perovskite solar cell efficiency]]></category>
		<category><![CDATA[perovskite solar cell efficiency enhancement]]></category>
		<category><![CDATA[resonance-enhanced SAM design]]></category>
		<category><![CDATA[SAM stability under operational stress]]></category>
		<category><![CDATA[self-assembled monolayers]]></category>
		<guid isPermaLink="false">https://scienmag.com/electronic-resonance-boosted-molecule-improves-perovskite-solar-cell-performance/</guid>

					<description><![CDATA[Perovskite solar cells have leapt forward in efficiency in part because self-assembled monolayers (SAMs) can be grown on transparent conductive oxides such as TCO-coated indium tin oxide (ITO). By anchoring to the oxide surface, these ultrathin layers create an interfacial molecular dipole that extracts electrons more efficiently from the perovskite absorber. Yet the very mechanism [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>Perovskite solar cells have leapt forward in efficiency in part because self-assembled monolayers (SAMs) can be grown on transparent conductive oxides such as TCO-coated indium tin oxide (ITO). By anchoring to the oxide surface, these ultrathin layers create an interfacial molecular dipole that extracts electrons more efficiently from the perovskite absorber. Yet the very mechanism that enables charge extraction also exposes a major weakness: the bonding between typical SAM anchor groups and oxide surfaces can be intrinsically weak. Under operational stress—heat, light, and thermal cycling—this fragility can trigger desorption, undermining long-term performance and stability.</p>
<p>A research team now reports a strategy to make SAMs far more resilient by redesigning their molecular electronic structure. Instead of relying only on conventional phosphonic acid–to-ITO binding, the authors build a donor–acceptor–donor (D–A–D) resonant architecture. In this design, electronic resonance concentrates negative charge density at the acceptor anchoring motif, effectively strengthening the chemical interaction with the ITO surface.</p>
<p>The stability results are striking. Devices incorporating the resonant SAM show negligible efficiency decay during maximum-power-point tracking (MPPT) for 1,080 hours at 85 ± 5 °C. Under additional stress from metal halide lamp illumination—100 mW cm⁻² with 4.4% UV content—at the same elevated temperature, the cells maintain more than 93% of their initial performance after 1,080 hours. Thermal robustness also improves: the devices retain over 98% after 720 repetitive temperature cycles spanning −40 °C to 85 °C.</p>
<p>The work links stability to charge transport, not just adhesion. Resonance-induced charge delocalization is proposed to improve carrier transport across the interface, reducing bottlenecks that typically accompany molecule–oxide layers. As a result, the interfacial layer functions simultaneously as a stabilizing anchor and as a facilitator of efficient electron extraction.</p>
<p>On the performance side, the approach scales to different device formats. The team reports certified power conversion efficiencies (PCEs) of 27.69% for 0.063 cm² devices and 23.63% for a larger aperture area of 15.64 cm². These figures place the method among the most competitive stability-focused interfacial engineering strategies in perovskite photovoltaics.</p>
<p>Importantly for commercialization relevance, the resonant SAM concept also transfers to flexible substrates. A certified efficiency of 26.64% is demonstrated on flexible devices of 0.063 cm², suggesting that the molecular resonance strategy does not depend narrowly on rigid device architectures.</p>
<p>Overall, the study frames a new stability paradigm for perovskite solar cells: tune the SAM’s electronic resonance to boost negative charge at the binding site, thereby reinforcing anchoring chemistry while simultaneously enhancing interfacial electronic transport. If broadly generalizable, resonant molecular design could become a key ingredient in reliable, high-efficiency perovskite modules.</p>
<p><strong>Subject of Research</strong>: Stability-enhanced self-assembled monolayers for perovskite solar cells (electron extraction and reduced SAM desorption)</p>
<p><strong>Article Title</strong>: Electronic-resonance enhanced molecule for perovskite solar cells</p>
<p><strong>Article References</strong>: Wu, X., Kou, W., Li, Z. et al. Electronic-resonance enhanced molecule for perovskite solar cells. Nature (2026). https://doi.org/10.1038/s41586-026-10919-4</p>
<p><strong>Image Credits</strong>: AI Generated</p>
<p><strong>DOI</strong>: 10.1038/s41586-026-10919-4</p>
<p><strong>Keywords</strong>: self-assembled monolayers; perovskite solar cells; donor–acceptor–donor resonance; phosphonic acid; ITO anchoring; charge extraction; operational stability; maximum power point tracking</p>
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