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	<title>hydrogen activation &#8211; Science</title>
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	<title>hydrogen activation &#8211; Science</title>
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		<title>Scientists Watch Light Supercharge Hydrogen Reactions on Platinum, Atom by Atom</title>
		<link>https://scienmag.com/scientists-watch-light-supercharge-hydrogen-reactions-on-platinum-atom-by-atom/</link>
		
		<dc:creator><![CDATA[Bethany Barker]]></dc:creator>
		<pubDate>Fri, 11 Sep 2026 23:13:36 +0000</pubDate>
				<category><![CDATA[Chemistry]]></category>
		<category><![CDATA[advances in catalytic reaction imaging]]></category>
		<category><![CDATA[atomic-level visualization of catalytic processes]]></category>
		<category><![CDATA[catalysis mechanisms]]></category>
		<category><![CDATA[chemical imaging]]></category>
		<category><![CDATA[experimental study of surface plasmon effects]]></category>
		<category><![CDATA[hot electrons]]></category>
		<category><![CDATA[hydrogen activation]]></category>
		<category><![CDATA[hydrogen activation on platinum surface]]></category>
		<category><![CDATA[hydrogen economy]]></category>
		<category><![CDATA[hydrogen molecule dissociation on platinum]]></category>
		<category><![CDATA[hydrogenation chemistry and hydrogen economy]]></category>
		<category><![CDATA[implications for fuel cell technology]]></category>
		<category><![CDATA[light-driven plasmonic catalysis]]></category>
		<category><![CDATA[nanometer-scale imaging of hydrogen reactions]]></category>
		<category><![CDATA[nanoscale imaging]]></category>
		<category><![CDATA[near-field enhancement]]></category>
		<category><![CDATA[Photocatalysis]]></category>
		<category><![CDATA[plasmon-enhanced hydrogen splitting]]></category>
		<category><![CDATA[plasmonics]]></category>
		<category><![CDATA[platinum (111) surface in surface science]]></category>
		<category><![CDATA[platinum catalyst]]></category>
		<category><![CDATA[Pt(111)]]></category>
		<category><![CDATA[role of plasmons in hydrogen activation]]></category>
		<category><![CDATA[surface science]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=193086</guid>

					<description><![CDATA[Researchers have visualized at the nanoscale how plasmon excitation spatially localizes hydrogen activation on a platinum (111) surface.]]></description>
										<content:encoded><![CDATA[<p>In a result that could reshape how chemists think about catalysis, researchers have now achieved something once thought beyond the reach of experimental science: watching, at the nanometer scale, how light-driven collective electron oscillations known as plasmons help break apart hydrogen molecules on a platinum surface. The work, published in Nature Chemistry, focuses on one of the most iconic surfaces in all of surface science, the platinum (111) plane, and reveals in vivid spatial detail where and how plasmon-enhanced hydrogen activation takes place. For a reaction that sits at the heart of fuel cells, hydrogenation chemistry and the wider hydrogen economy, the ability to see the process rather than infer it from averages marks a genuine turning point.</p>
<p>Hydrogen activation, the splitting of the tightly bound H–H bond, is famously difficult. Molecular hydrogen is stable and largely inert, which is precisely why catalysts such as platinum are so valuable. On a platinum surface, the molecule adsorbs, stretches and dissociates into individual hydrogen atoms that can then participate in downstream chemistry. For decades, scientists have measured how quickly this happens and how it depends on temperature, pressure and surface structure. What they could not do, until now, is map the reaction with nanoscale spatial resolution while simultaneously pumping the system with optical energy stored in plasmons, the collective oscillations of conduction electrons that can concentrate light into nanoscopic volumes.</p>
<p>Plasmons have become one of the hottest topics in physical chemistry because they promise to do something remarkable: take abundant visible light and squeeze its energy into regions of space far smaller than the wavelength of the light itself. When light strikes a metallic nanostructure, the electrons slosh back and forth coherently, creating intense local electromagnetic fields at edges, tips and gaps. These hot spots can dramatically accelerate chemical reactions, in some cases enabling chemistry that simply will not proceed under ordinary thermal conditions. Yet a long-standing frustration has shadowed the field. Spectroscopic measurements of plasmon-driven catalysis typically average over millions or billions of sites on a surface, leaving researchers to debate whether the enhancement is truly electromagnetic, thermal, or driven by energetic charge carriers called hot electrons.</p>
<p>The new study cuts through that ambiguity by combining plasmonic excitation with a technique capable of nanoscale chemical imaging. The researchers devised an approach in which the catalytic activity of a platinum surface could be visualized with a spatial resolution approaching tens of nanometers, revealing precisely which regions of the surface light up with hydrogen activation when plasmons are excited. Rather than reporting a single rate constant for the whole sample, the measurement delivers a spatial map, an activity landscape in which the influence of local geometry, field strength and plasmonic hot spots is laid bare.</p>
<p>The choice of Pt(111) is significant. This crystallographic plane is the smoothest, most densely packed face of platinum and serves as the reference surface against which virtually all models of platinum catalysis are calibrated. Decades of ultrahigh-vacuum surface science have established how hydrogen adsorbs and dissociates on it under well-controlled conditions. By anchoring their plasmon-enhanced measurements to this benchmark surface, the team could interpret their nanoscale maps against a deep existing body of knowledge, isolating the contribution that plasmonic excitation makes over and above ordinary thermal catalysis.</p>
<p>The central finding is striking: hydrogen activation on the platinum surface is not uniform when plasmons are engaged. Instead, the reaction is strongly localized, concentrated in regions where the optical fields are amplified. The nanoscale visualization demonstrates that plasmon excitation does not merely heat the whole surface or produce a uniform boost in reactivity. Rather, the enhancement is spatially patterned, tracking the distribution of the electromagnetic near-fields generated by the collective electron oscillations. This spatial correlation between optical hot spots and chemical activity is precisely the kind of evidence the plasmon-catalysis community has been seeking, because it distinguishes true field-driven enhancement from diffuse thermal effects that would raise activity everywhere at once.</p>
<p>From a mechanistic standpoint, the result lends strong support to the picture in which plasmon decay generates energetic charge carriers, hot electrons and hot holes, that can transfer into the antibonding orbitals of adsorbed hydrogen molecules, weakening the H–H bond and lowering the barrier to dissociation. Alternatively, the intense local fields can directly polarize the molecule, stretching the bond before it even contacts the surface. The nanoscale maps do not by themselves settle every mechanistic detail, and the authors are careful about what their data do and do not prove. But by showing that activity concentrates where the fields concentrate, the work establishes a causal spatial link that bulk-averaged spectroscopy could never deliver, and it provides quantitative constraints that any proposed mechanism must now satisfy.</p>
<p>The technical achievement behind these observations should not be underestimated. Imaging a chemical reaction at nanometer resolution requires balancing several demanding constraints simultaneously. The measurement must be sensitive enough to detect hydrogen, the lightest and most elusive of adsorbates. It must maintain the integrity of the atomically defined platinum surface throughout the experiment. And it must permit controlled optical excitation of the plasmonic modes without overwhelming the signal with background heating. The experimental architecture described in the paper threads this needle, pairing a pump pathway for plasmon excitation with a probe pathway that reads out the local chemical state of the surface. The result is essentially a microscope for catalytic function rather than merely for structure.</p>
<p>The implications extend well beyond a single surface and a single molecule. Hydrogen activation on platinum underpins proton-exchange membrane fuel cells, electrolysers and a vast range of industrial hydrogenation processes. If plasmonic excitation can steer and amplify that activation step with spatial precision, catalyst designers gain a new dimension of control: not just what a catalyst is made of, but where on its surface the chemistry happens and how strongly light is coupled into it. This opens a concrete design pathway toward photocatalysts in which sunlight directly supplements or replaces thermal energy, potentially reducing the energy footprint of hydrogen-based technologies. It also suggests a strategy for catalysts that can be switched on and off with light, a level of temporal control that conventional thermal catalysis cannot offer.</p>
<p>The work also delivers a methodological gift to the field. Nanoscale visualization of plasmon-enhanced reactivity provides a template that other groups can adapt to different catalytic systems, from other transition-metal surfaces to bimetallic nanoparticles and semiconductor-supported metal clusters. Any long-standing mechanistic controversy in plasmon catalysis, whether about hot carriers, thermal gradients or near-field effects, can now be interrogated with the same spatially resolved toolkit. In science, the ability to see a phenomenon directly has repeatedly proven more decisive than any indirect argument, and this study hands the plasmon-catalysis community exactly that capability for one of the most important reactions in chemistry.</p>
<p>There remain, of course, substantial steps between a benchmark ultrahigh-vacuum demonstration and a working industrial device. Real catalysts operate at high pressure, on complex nanoparticle morphologies, under conditions far removed from the carefully controlled environment of a surface-science experiment. The plasmonic enhancements reported here must be scaled, made durable and integrated into reactor engineering before they can influence the hydrogen economy at scale. Yet the conceptual barrier has fallen. Plasmon-enhanced hydrogen activation on platinum is no longer a hypothesis supported by averaged spectra; it is a mapped, visualized phenomenon whose spatial structure can be measured, modeled and ultimately engineered. For a field that has spent years arguing about what plasmons really do in catalysis, seeing is, quite literally, believing.</p>
<p>The distinction between spatially patterned and uniform enhancement carries practical weight for how plasmonic catalysts should be engineered. If activity tracked only temperature, the sensible design goal would be maximizing heat delivery across the entire active surface. Because the observed reactivity instead follows the near-field distribution, designers can in principle concentrate catalytic function at specific sites, such as nanoparticle corners, edges or narrow gaps between adjacent structures, where field amplification is strongest. This decouples the location of light absorption from the location of chemical turnover, a degree of freedom unavailable in purely thermal catalysis.</p>
<p>Hydrogen is a particularly demanding test case for such imaging. Its single electron offers a very small scattering cross-section, and its adsorbed states on platinum are mobile and weakly bound, making them easy to overlook or displace during measurement. That the technique resolves hydrogen activation at all, let alone with spatial contrast, suggests the approach could be extended to other light adsorbates and reaction intermediates that have resisted direct nanoscale observation.</p>
<p>The benchmark character of Pt(111) also matters for theory. Computational models of hydrogen dissociation on this surface, built from density functional theory and refined over decades, now have a plasmon-enhanced counterpart against which to be tested. Any mechanism proposing hot-carrier transfer, near-field polarization or transient thermal excitation must reproduce not only an overall rate enhancement but also its spatial fingerprint. This converts a class of mechanistic debates from qualitative argument into quantitative comparison.</p>
<p>Finally, the study illustrates a broader trend in which optical excitation and local probe microscopy are merged into a single experimental platform. As such platforms mature, spatially resolved maps of light-driven reactivity may become as routine as conventional kinetic measurements, reshaping how photocatalytic materials are screened and optimized.</p>
<p><strong>Subject of Research:</strong> Nanoscale imaging of plasmon-enhanced hydrogen molecule activation on a platinum (111) surface</p>
<p><strong>Article Title:</strong> Nanoscale visualization of plasmon-enhanced hydrogen activation on a Pt(111) surface</p>
<p><strong>Article References:</strong> Cai, Z.-F., Manae, M. A., Tang, Z.-X., Zhang, J.-X., Zhang, Y., Richardson, J. O., &amp; Kumar, N. (2026). Nanoscale visualization of plasmon-enhanced hydrogen activation on a Pt(111) surface. <em>Nature Chemistry</em>. <a href="https://doi.org/10.1038/s41557-026-02245-z" rel="noopener noreferrer">https://doi.org/10.1038/s41557-026-02245-z</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1038/s41557-026-02245-z" rel="noopener noreferrer">10.1038/s41557-026-02245-z</a></p>
<p><strong>Keywords:</strong> plasmonics, hydrogen activation, platinum catalyst, Pt(111), nanoscale imaging, hot electrons, surface science, photocatalysis, catalysis mechanisms, hydrogen economy, near-field enhancement, chemical imaging</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">193086</post-id>	</item>
		<item>
		<title>Novel Ceramic Catalyst Leverages Sodium and Boron for Sustainable Industrial Reactions</title>
		<link>https://scienmag.com/novel-ceramic-catalyst-leverages-sodium-and-boron-for-sustainable-industrial-reactions/</link>
		
		<dc:creator><![CDATA[Bethany Barker]]></dc:creator>
		<pubDate>Tue, 21 Jan 2025 16:00:14 +0000</pubDate>
				<category><![CDATA[Technology and Engineering]]></category>
		<category><![CDATA[boron chemistry]]></category>
		<category><![CDATA[frustrated Lewis pairs]]></category>
		<category><![CDATA[green chemistry]]></category>
		<category><![CDATA[hydrogen activation]]></category>
		<category><![CDATA[industrial applications]]></category>
		<category><![CDATA[international research collaboration]]></category>
		<category><![CDATA[nanoconfined reaction fields]]></category>
		<category><![CDATA[polymer-derived ceramics]]></category>
		<category><![CDATA[sodium-doped SiBN ceramic]]></category>
		<category><![CDATA[sustainable catalysis]]></category>
		<category><![CDATA[thermal stability]]></category>
		<category><![CDATA[transition metal-free catalysts]]></category>
		<guid isPermaLink="false">https://scienmag.com/novel-ceramic-catalyst-leverages-sodium-and-boron-for-sustainable-industrial-reactions/</guid>

					<description><![CDATA[In a groundbreaking advancement in the field of catalysis, researchers have unveiled a sodium-doped, transition metal-free amorphous silicon-boron-nitride (SiBN) ceramic designed for hydrogen activation and catalysis. This innovative material emerges as a sustainable alternative to conventional metal-based catalysts, which have long been staples in industries ranging from petrochemicals to agriculture. By focusing on abundant elements [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a groundbreaking advancement in the field of catalysis, researchers have unveiled a sodium-doped, transition metal-free amorphous silicon-boron-nitride (SiBN) ceramic designed for hydrogen activation and catalysis. This innovative material emerges as a sustainable alternative to conventional metal-based catalysts, which have long been staples in industries ranging from petrochemicals to agriculture. By focusing on abundant elements such as silicon, boron, and nitrogen, the research provides a promising avenue toward a more sustainable and cost-effective approach to catalysis.</p>
<p>The significance of this study lies in its novel application of frustrated Lewis pair (FLP) chemistry, a concept that revolutionized small molecule activation since its introduction in the mid-2000s. An FLP consists of a Lewis acid and a Lewis base that cannot fully react due to spatial or electronic hindrances, thereby maintaining a highly reactive state. This unique characteristic permits FLPs to engage with stable molecules—such as hydrogen and carbon dioxide—that are typically resistant to activation. The researchers aimed to harness this chemistry to develop a catalyst that capitalizes on the dynamic interactions within the SiBN matrix.</p>
<p>Utilizing a polymer-derived ceramic (PDC) process, the research team successfully integrated sodium and boron into the silica scaffold, resulting in a sodium-doped SiBN ceramic that exhibits remarkable reactivity and selectivity. The polymer precursor used, a nitrogen-containing organosilicon polymer known as polysilazane, played a critical role in facilitating the formation of specific Lewis acid-base interactions. Upon thermal conversion, the resulting a-SiN scaffold enables precise control over pore sizes, creating nanoconfined reaction fields that significantly enhance the catalyst&#8217;s performance.</p>
<p>Key to the success of this work was the adaptation of molecular-based FLPs within a solid-state matrix. Unlike traditional defective heterogeneous FLPs, which struggle with reactivity and stability tuning, this new approach more easily adjusts reactivity by modifying the surrounding chemical environment. This pivotal structural feature facilitates efficient catalysis, especially under challenging conditions where traditional catalysts may falter.</p>
<p>The research team conducted extensive experiments to unveil how the sodium-doped SiBN interacts with hydrogen at a molecular level through advanced spectroscopic techniques. Their findings revealed a striking increase in reactivity among both the boron and nitrogen sites in the presence of hydrogen. Notably, hydrogen molecules induce significant transformations in the boron-nitrogen moiety, altering its coordination and creating frustrated Lewis acid (FLA) sites. This interaction leads to a complex pattern of reversible hydrogen adsorption and desorption, emphasizing the material&#8217;s potential as a catalyst for sustainable hydrogen-based processes.</p>
<p>Adding to the excitement, the study observed that the unique architecture of the sodium-doped SiBN ceramic grants it exceptional thermal stability—an essential trait for catalysts employed in demanding industrial settings. This high thermal resistance allows it to operate efficiently in vital chemical reactions, including hydrogenation processes, which are critical in various sectors, including energy and chemical manufacturing.</p>
<p>Not only does this novel catalyst showcase remarkable performance, but it also signals a shift in the way researchers are approaching catalysis. By focusing on common and less toxic elements, the team aims to propel the field toward sustainable practices that rely less on rare and expensive metals, thus making industrial processes more viable and environmentally friendly. The potential implications of this research extend beyond individual applications, hinting at a broader transformation within the industry.</p>
<p>This endeavor also highlights the importance of international collaboration in scientific research. The study brought together an exceptional range of expertise, including contributions from Japan&#8217;s Nagoya Institute of Technology, France&#8217;s University of Limoges, and India’s Indian Institute of Technology Madras. Such collaborative initiatives are vital in fostering innovation and enabling cross-disciplinary explorations in cutting-edge fields like catalysis.</p>
<p>The research team&#8217;s findings have stirred considerable interest within the scientific community, as evidenced by its designation as a &quot;Hot Paper&quot; soon after publication and the growing anticipation around its implications for future research. The paper detailing these advancements is set to appear in a prominent scientific journal, underscoring the significance of their work in progressing the field of sustainable catalysis.</p>
<p>As industries worldwide seek greener and more efficient chemical processes, the research presents a concrete step toward reimagining catalytic systems that can operate effectively without relying on conventional metals. With its foundation in accessible materials and innovative methodologies, this study exemplifies how fundamental chemistry can address pressing industrial challenges while promoting sustainability in technology.</p>
<p>The future appears bright for the sodium-doped SiBN ceramic, as ongoing investigations continue to explore its full potential across various chemical processes. The interest that this work has ignited serves as a testament to science’s ability to innovate and adapt in the face of global challenges. As catalysis evolves, embracing novel concepts like frustrated Lewis pairs will remain crucial to advancing the field and providing solutions to complex problems.</p>
<p>In summary, the research conducted at Nagoya Institute of Technology offers a compelling glimpse into the next generation of catalytic materials. By breaking away from traditional metal-centric approaches and focusing on abundant elements, the team has set the stage for a transformative shift toward more sustainable and efficient industrial practices. Their findings not only contribute to the scientific understanding of catalysis but also pave the way for practical applications that could significantly impact the energy and chemical sectors.</p>
<p><strong>Subject of Research</strong>: Heterogeneous catalysis using sodium-doped amorphous silicon-boron-nitride ceramics.<br />
<strong>Article Title</strong>: Novel Lewis Acid-Base Interactions in Polymer-Derived Sodium-Doped Amorphous Si−B−N Ceramic: Towards Main-Group-Mediated Hydrogen Activation.<br />
<strong>News Publication Date</strong>: November 11, 2024.<br />
<strong>Web References</strong>: <a href="https://doi.org/10.1002/anie.202410961">Angewandte Chemie International Edition</a>.<br />
<strong>References</strong>: The study was published in Volume 63, Issue 46 of Angewandte Chemie International Edition.<br />
<strong>Image Credits</strong>: Professor Yuji Iwamoto from Nagoya Institute of Technology, Japan. </p>
<h4><strong>Keywords</strong></h4>
<p> Sustainable catalysis, sodium-doped SiBN ceramic, frustrated Lewis pairs, hydrogen activation, polymer-derived ceramics, industrial applications.</p>
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