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	<title>Metamaterials &#8211; Science</title>
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	<title>Metamaterials &#8211; Science</title>
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		<title>Scientists Learn to Stack Fano Interferences for Sharper Plasmonic Energy Transfer</title>
		<link>https://scienmag.com/scientists-learn-to-stack-fano-interferences-for-sharper-plasmonic-energy-transfer/</link>
		
		<dc:creator><![CDATA[Denise Maddox]]></dc:creator>
		<pubDate>Fri, 11 Sep 2026 23:11:45 +0000</pubDate>
				<category><![CDATA[Technology and Engineering]]></category>
		<category><![CDATA[advanced light manipulation at the nanoscale]]></category>
		<category><![CDATA[asymmetric spectral line shapes]]></category>
		<category><![CDATA[efficient molecular excitation via plasmonics]]></category>
		<category><![CDATA[energy flow enhancement in nanostructures]]></category>
		<category><![CDATA[energy transfer efficiency]]></category>
		<category><![CDATA[engineered nanostructures for optical control]]></category>
		<category><![CDATA[Fano resonance]]></category>
		<category><![CDATA[Fano resonance engineering]]></category>
		<category><![CDATA[Fano resonance in nanophotonics]]></category>
		<category><![CDATA[interference engineering]]></category>
		<category><![CDATA[light-matter interaction]]></category>
		<category><![CDATA[Metamaterials]]></category>
		<category><![CDATA[molecular assemblies]]></category>
		<category><![CDATA[Nanophotonics]]></category>
		<category><![CDATA[nanophotonics design principles]]></category>
		<category><![CDATA[nanoscale light-matter interactions]]></category>
		<category><![CDATA[nanostructures]]></category>
		<category><![CDATA[near-field enhancement]]></category>
		<category><![CDATA[plasmon resonance energy transfer]]></category>
		<category><![CDATA[plasmonic energy transfer]]></category>
		<category><![CDATA[plasmonics]]></category>
		<category><![CDATA[spectroscopy]]></category>
		<category><![CDATA[superposition of multiple Fano interferences]]></category>
		<category><![CDATA[tunable optical interference effects]]></category>
		<guid isPermaLink="false">https://scienmag.com/?p=193082</guid>

					<description><![CDATA[Researchers have shown that tuning the superposition of multiple Fano interferences in plasmonic nanostructures can significantly improve the efficiency of energy transfer to assembled molecules.]]></description>
										<content:encoded><![CDATA[<p>Light passing through a carefully engineered nanostructure can behave in ways that ordinary optics never allows. It can cancel itself out at certain frequencies, reinforce itself at others, and produce sharply asymmetric spectral lines that seem to defy the smooth, bell-shaped curves familiar from everyday absorption and scattering. These distinctive line shapes, known as Fano resonances, have become one of the most powerful tools in nanophotonics. Now researchers report a strategy that goes a step further than simply creating a single Fano resonance: by deliberately tuning the superposition of multiple Fano interferences within one plasmonic system, they show how the flow of energy between a nanostructure and molecules assembled on its surface can be made dramatically more efficient. The work, published in Light: Science &amp; Applications, points toward a design principle in which interference itself becomes an adjustable resource for controlling light-matter interactions at the nanoscale.</p>
<p>To appreciate why this matters, it helps to recall what a Fano resonance actually is. The effect is named after the Italian-American physicist Ugo Fano, who in the 1930s explained an asymmetry observed in the autoionization spectra of helium. Fano showed that when a narrow, discrete resonance pathway for light interferes with a broad, continuous background pathway, the two contributions can add constructively on one side of the resonance and destructively on the other. The result is a characteristically skewed line profile: an abrupt dip that plunges below the background level, followed by a sharp peak, all compressed into a remarkably narrow spectral window. In plasmonics, the same mathematics applies when a sharp collective oscillation of electrons in a metal nanostructure couples to a broad continuum of radiative modes.</p>
<p>Plasmonic nanostructures are prized because they squeeze light into volumes far smaller than its wavelength, concentrating electromagnetic fields into hot spots where molecules can sit. When a molecule is placed in such a hot spot, it can receive energy from the nanostructure through plasmon resonance energy transfer, a near-field process in which the oscillating dipole of the plasmon excites the molecule directly rather than through far-field radiation. The efficiency of this transfer depends exquisitely on spectral overlap: the plasmon resonance must line up with the molecular absorption band, and the local field at the molecule must be strong enough. In practice, most plasmonic resonances are broad and lossy, because the same metals that support plasmons also absorb light, converting precious energy into heat rather than delivering it to the molecule.</p>
<p>This is where Fano interference offers a way forward. Because a Fano resonance arises from destructive interference, it can carve an extremely narrow spectral feature into an otherwise broad plasmon response. Narrow features mean high spectral selectivity and, crucially, strong field enhancement at specific frequencies. Many researchers have exploited single Fano resonances in structures such as dolmen arrays, ring-disk cavities, and oligomer clusters to sharpen plasmonic responses. But a single resonance offers only one adjustable interference channel. The new study asks what happens when several Fano interferences coexist in the same structure and can be tuned to overlap or separate at will.</p>
<p>The answer lies in the physics of superposition. Each Fano interference in a multiresonant plasmonic system contributes its own asymmetric line shape, with its own spectral position, width, and phase. When several of these contributions are present simultaneously, the total optical response is not simply the sum of independent resonances; the interferences talk to each other. By adjusting geometric parameters such as the spacing, size, and orientation of the constituent elements of the nanostructure, researchers can shift the individual Fano features relative to one another. At certain configurations, destructive dips from different interferences can coincide and deepen, suppressing radiative loss precisely where it matters. At other configurations, constructive regions can align to build an enhanced field exactly at the molecular transition energy.</p>
<p>The practical consequence for energy transfer is substantial. Plasmon resonance energy transfer to molecules assembled on a nanostructure competes with two loss channels: radiative scattering, in which energy escapes as photons, and ohmic absorption, in which energy dissipates as heat in the metal. By tuning the superposition of multiple Fano interferences, the researchers engineer a spectral window in which radiative loss is suppressed by destructive interference while the near field at the molecule remains strong. In effect, the interferences act like a microscopic valve, steering energy away from the far field and toward the molecular acceptors. The assembled molecules, packed densely on the structure&#8217;s surface, act as an efficient energy sink once the transfer channel is opened.</p>
<p>The fact that the molecules are assembled, rather than isolated, is itself significant. Dense molecular layers on plasmonic substrates are the basis of surface-enhanced spectroscopies, molecular sensing, and light-harvesting architectures, but they also modify the electromagnetic environment that sustains the plasmon resonance. A dense layer shifts and broadens resonances through its own dielectric response, which can destroy the delicate spectral alignment needed for efficient transfer. A system designed around multiple tunable Fano interferences carries an intrinsic advantage here: because the interference channels can be adjusted, the structure can be deliberately designed so that its engineered spectral features remain aligned with the molecular bands even after the molecular layer is added. Tunability becomes a form of robustness.</p>
<p>Beyond the immediate goal of efficient energy transfer, the study contributes to a broader conceptual shift in nanophotonics. For much of its history, the field treated interference effects as phenomena to be observed and characterized. The present work exemplifies a newer perspective in which interference is treated as a design variable, something to be engineered and stacked much like circuit elements in electronics. Multiple Fano interferences, individually understood for decades, become building blocks whose superposition can be programmed. This perspective resonates with related developments in bound states in the continuum, quasi-bound states, and multimode interference engineering, all of which seek to sculpt optical responses by coordinating several resonant channels rather than relying on a single one.</p>
<p>The potential applications span several active areas of research. In molecular sensing, narrow Fano features sharpen spectral fingerprints and improve the detection of minute refractive-index changes, so better control over multiple interferences translates directly into higher sensor sensitivity. In light harvesting and photocatalysis, transferring plasmon energy efficiently into molecular assemblies is a long-standing goal, because plasmonic structures can absorb broadband sunlight but must funnel that energy into specific molecular transitions without wasting it as heat. In quantum and nonlinear optics, engineered interference landscapes can enhance weak processes such as second-harmonic generation or single-photon emission by concentrating fields and suppressing competing channels. Each of these applications stands to benefit from design rules that specify how to tune the superposition of interferences rather than merely how to create a single resonance.</p>
<p>Challenges, of course, remain. Real nanostructures are fabricated with finite precision, and Fano interferences are notoriously sensitive to small geometric deviations, since their line shapes depend on the delicate balance of phase between coupled pathways. Ohmic losses in metals cannot be eliminated by interference alone, and the ultimate efficiency of energy transfer is still bounded by material absorption. Scaling these structures from single devices to large-area arrays introduces additional disorder that can wash out carefully tuned interference features. Nevertheless, the demonstration that multiple Fano interferences can be tuned coherently within one plasmonic platform marks a meaningful advance. It reframes the problem of plasmon-molecule energy transfer from a passive matching exercise into an active interference-engineering problem, one in which the structure itself is designed to send its energy where it is wanted. As nanofabrication continues to improve and design algorithms grow more sophisticated, interference-tuned plasmonic architectures of this kind are likely to become central components in molecular spectroscopy, sensing, and light-driven chemistry.</p>
<p>The distinction between near-field and far-field energy pathways helps clarify why interference engineering is so consequential for molecular systems. In conventional plasmon-molecule coupling, a large fraction of the energy stored in the plasmon oscillation is reradiated into free space before it can reach the acceptor molecules, because radiative decay is often the fastest available decay channel. Destructive interference between the discrete and continuum pathways effectively slows this radiative leakage, lengthening the lifetime of the plasmon and giving the near-field transfer process more time to act. In this sense, the Fano dip is not merely a spectral curiosity but a temporal resource: a narrower, longer-lived resonance corresponds to a stronger and more sustained local field at the molecular site.</p>
<p>The phase structure of the Fano profile also matters. Because the asymmetric line shape changes phase abruptly across the resonance, the relative timing of the field oscillations experienced by the molecules can be controlled by shifting which part of the profile overlaps the molecular transition. This adds a degree of freedom beyond simple spectral alignment, allowing designers to select not only the amplitude of the driving field but its phase behavior, which can influence coherent processes in molecular ensembles.</p>
<p>It is worth noting that the strategy is conceptually compatible with complementary approaches to loss management, such as using alternative plasmonic materials or gain media. Interference-based suppression of radiative loss addresses a different channel than material engineering, and the two could in principle be combined. The tunable superposition framework thus fits naturally into a broader toolkit for nanophotonic design, one in which geometry, material composition, and interference coordination are treated as jointly optimizable parameters for maximizing energy delivery to molecular acceptors.</p>
<p><strong>Subject of Research:</strong> Tuning superposed multiple Fano interferences in plasmonic nanostructures to enhance plasmon resonance energy transfer to assembled molecules</p>
<p><strong>Article Title:</strong> Tuning superposition of multiple Fano interferences for efficient plasmon resonance energy transfer to the assembled molecules</p>
<p><strong>Article References:</strong> Wang, Y., Sang, X., Dou, Z.-L., Zhou, Q.-X., Zhao, Z., Yang, D.-J., Zhang, Y., Zhou, L., Li, X., &amp; Wang, Q.-Q. (2026). Tuning superposition of multiple Fano interferences for efficient plasmon resonance energy transfer to the assembled molecules. <em>Light: Science &amp;amp; Applications, 15</em>(1), Article 376. <a href="https://doi.org/10.1038/s41377-026-02381-8" rel="noopener noreferrer">https://doi.org/10.1038/s41377-026-02381-8</a></p>
<p><strong>Image Credits:</strong> AI Generated</p>
<p><strong>DOI:</strong> <a href="https://doi.org/10.1038/s41377-026-02381-8" rel="noopener noreferrer">10.1038/s41377-026-02381-8</a></p>
<p><strong>Keywords:</strong> Fano resonance, plasmonics, plasmon resonance energy transfer, nanostructures, light-matter interaction, molecular assemblies, nanophotonics, interference engineering, near-field enhancement, spectroscopy, energy transfer efficiency, metamaterials</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">193082</post-id>	</item>
		<item>
		<title>AI-driven Generative Model Revolutionizes Information Metamaterial Design</title>
		<link>https://scienmag.com/ai-driven-generative-model-revolutionizes-information-metamaterial-design/</link>
		
		<dc:creator><![CDATA[Neil Sanderson]]></dc:creator>
		<pubDate>Tue, 14 Jul 2026 15:30:22 +0000</pubDate>
				<category><![CDATA[Technology and Engineering]]></category>
		<category><![CDATA[advanced wave manipulation via generative AI]]></category>
		<category><![CDATA[AI-driven electromagnetic design]]></category>
		<category><![CDATA[data-driven electromagnetic structure optimization]]></category>
		<category><![CDATA[diffusion-based neural networks for metamaterials]]></category>
		<category><![CDATA[generative model for information metamaterials]]></category>
		<category><![CDATA[hybrid AI architectures for metamaterial fabrication]]></category>
		<category><![CDATA[inverse design of metastructures]]></category>
		<category><![CDATA[Metamaterials]]></category>
		<category><![CDATA[multimodal electromagnetic response modeling]]></category>
		<category><![CDATA[programmable beam shaping and holography]]></category>
		<category><![CDATA[scalable metamaterial design algorithms]]></category>
		<category><![CDATA[versatile electromagnetic device design]]></category>
		<guid isPermaLink="false">https://scienmag.com/ai-driven-generative-model-revolutionizes-information-metamaterial-design/</guid>

					<description><![CDATA[In a groundbreaking advance at the intersection of electromagnetic engineering and artificial intelligence, researchers have unveiled a generative model that revolutionizes the design of information metamaterials. These digitally coded electromagnetic structures integrate wave manipulation capabilities with information processing, enabling programmable control over beam shaping, focusing, and holographic imaging. Until now, the inverse design of such [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a groundbreaking advance at the intersection of electromagnetic engineering and artificial intelligence, researchers have unveiled a generative model that revolutionizes the design of information metamaterials. These digitally coded electromagnetic structures integrate wave manipulation capabilities with information processing, enabling programmable control over beam shaping, focusing, and holographic imaging. Until now, the inverse design of such metamaterials—where meta-atoms and their spatial arrangements must be optimized from astronomically large combinatorial spaces—posed a steep challenge that limited their practical application.</p>
<p>Traditional approaches relied heavily on optimization algorithms or tailored learning methods, which were often confined to specific tasks, resolutions, or target field patterns. This restriction created bottlenecks in scalability and versatility. The novel generative model presented by Hou, Chen, Zheng, and colleagues breaks through these limitations by introducing a shared design prior that can be seamlessly transferred across a diverse array of electromagnetic functions. Central to their approach is a diffusion-based backbone network pretrained on extensive metamaterial design data, which is augmented by lightweight, function-specific adapters.</p>
<p>This hybrid architecture allows the model to generate multibit meta-atoms that produce precise electromagnetic responses tailored to various tasks, including nonuniform arrays optimized for beam steering, near-field focusing, and holographic projection. Numerical simulations confirm the model’s ability to design highly effective meta-atoms and metasurface arrays with bit resolutions up to 3-bit, showcasing both accuracy and functional fidelity. Experimental validations further substantiate these findings, demonstrating real-world feasibility.</p>
<p>One of the most striking achievements lies in holographic design, where the generative model attains a reconstruction fidelity on par with classical Gerchberg–Saxton algorithms—widely considered a gold standard—while slashing computational runtime by over a thousandfold. This speedup is a game-changer for scalable, high-throughput metamaterial discovery, enabling rapid exploration of complex design spaces that would otherwise be computationally prohibitive.</p>
<p>The research signals a paradigm shift in metamaterial synthesis, where generative AI models can encapsulate vast electromagnetic design knowledge in transferable priors, thereby facilitating broad functionality without retraining from scratch. This approach promises to accelerate the development of next-generation photonic devices used in telecommunications, imaging systems, and adaptive optics.</p>
<p>As information metamaterials increasingly find roles in programmable photonics and advanced electromagnetic applications, the ability to seamlessly integrate wave control with intelligent design methods unlocks new technological horizons. This innovation presents a compelling example of how AI-driven generative models can overcome intrinsic challenges in physical sciences, opening avenues for rapid, multifunctional device engineering.</p>
<p>The work also presents a scalable and versatile toolkit that could extend beyond electromagnetic metamaterials to other domains requiring combinatorial design optimizations, setting a precedent for future material informatics strategies. The synergy of pretrained diffusion models and lightweight adapters marks a new era of adaptive, multi-functional metamaterial design, heralding significant advancements in programmable electromagnetic structures.</p>
<p>Ultimately, this breakthrough underlines the transformative potential of integrating deep generative modeling with electromagnetic metamaterial engineering—ushering in an era of accelerated discovery, enhanced design precision, and wide-ranging applicability across diverse fields.</p>
<p>—</p>
<p>Subject of Research: Information Metamaterial Design via Generative AI Models</p>
<p>Article Title: Generative model for information metamaterial design</p>
<p>Article References:<br />
Hou, J., Chen, L., Zheng, X. et al. Generative model for information metamaterial design. Nat Comput Sci (2026). https://doi.org/10.1038/s43588-026-01025-6</p>
<p>Image Credits: AI Generated</p>
<p>DOI: https://doi.org/10.1038/s43588-026-01025-6</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">172443</post-id>	</item>
		<item>
		<title>Advancing Wireless Communication: Leveraging Electromagnetic Waves and Quantum Materials</title>
		<link>https://scienmag.com/advancing-wireless-communication-leveraging-electromagnetic-waves-and-quantum-materials/</link>
		
		<dc:creator><![CDATA[Katie Riggs]]></dc:creator>
		<pubDate>Tue, 21 Jan 2025 20:11:22 +0000</pubDate>
				<category><![CDATA[Science Education]]></category>
		<category><![CDATA[6G technologies]]></category>
		<category><![CDATA[Electromagnetic waves]]></category>
		<category><![CDATA[Frequency conversion]]></category>
		<category><![CDATA[Graphene-based structures]]></category>
		<category><![CDATA[Light-matter interactions]]></category>
		<category><![CDATA[Metamaterials]]></category>
		<category><![CDATA[Non-invasive imaging]]></category>
		<category><![CDATA[nonlinear optics.]]></category>
		<category><![CDATA[Photonics]]></category>
		<category><![CDATA[Quantum materials]]></category>
		<category><![CDATA[Terahertz waves]]></category>
		<category><![CDATA[Wireless communication]]></category>
		<guid isPermaLink="false">https://scienmag.com/advancing-wireless-communication-leveraging-electromagnetic-waves-and-quantum-materials/</guid>

					<description><![CDATA[In a groundbreaking study, a team of researchers from the University of Ottawa has developed innovative methodologies for enhancing the frequency conversion of terahertz (THz) waves in graphene-based structures. These advancements promise to significantly impact the world of wireless communication and signal processing, paving the way for technologies that could redefine how data is transmitted [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a groundbreaking study, a team of researchers from the University of Ottawa has developed innovative methodologies for enhancing the frequency conversion of terahertz (THz) waves in graphene-based structures. These advancements promise to significantly impact the world of wireless communication and signal processing, paving the way for technologies that could redefine how data is transmitted in the near future. Notably, terahertz waves occupy the far-infrared region of the electromagnetic spectrum, which presents unique opportunities for various applications, including non-invasive imaging and effective wireless communication.</p>
<p>By leveraging the unique properties of graphene, an atomically thin layer of carbon atoms, the research team has unlocked new potential for more efficient and faster communication technologies. Their work is an essential step towards the much-anticipated progression of communication systems to 6G technologies and beyond. The research underscores the vital importance of THz nonlinear optics—the manipulation of electromagnetic wave frequencies—as a crucial element for these future systems.</p>
<p>The study illustrates how THz waves can be utilized beyond traditional telecommunications, venturing into fields like security and quality control. For instance, THz frequencies are instrumental in non-invasive imaging techniques, which allow for the examination of opaque materials. This capability could revolutionize security measures by enabling high-resolution imaging through barriers, providing greater insight without invasive methods. Researchers anticipate that enhancing THz frequency conversion will lead to improved wireless technologies that can meet the demands of future data communication.</p>
<p>Professor Jean-Michel Ménard, an Associate Professor of Physics at the University of Ottawa, emphasizes the critical nature of this research. He notes that the ability to efficiently upconvert electromagnetic signals to higher frequencies might be the key to bridging gaps between current GHz electronics and promising THz photonics. The potential applications for these technologies extend beyond mere communication, potentially influencing various sectors including healthcare, security, and materials science.</p>
<p>The findings of this innovative work were published in the prestigious journal &quot;Light: Science &amp; Applications.&quot; The publication details the innovative strategies that the team employed to enhance the efficiencies of THz nonlinearities in graphene-based devices. According to Professor Ménard, the research signifies a landmark advancement in improving THz frequency converters, which are essential for multi-spectral THz applications and the forefront of emerging communication technologies.</p>
<p>This research is a culmination of collaborative efforts among various experts, including uOttawa researchers Ali Maleki and Robert W. Boyd, alongside international collaborators from the University of Bayreuth in Germany and Iridian Spectral Technologies. The interdisciplinary nature of the project highlights the significance of global partnerships in tackling complex scientific questions and pushing the boundaries of technological innovation.</p>
<p>Graphene’s two-dimensional nature provides an exceptional ability to be integrated seamlessly into existing technologies. This study not only enhances the understanding of light-matter interactions in graphene but also lays a foundation for developing novel signal processing applications. With the ability to exploit graphene’s optical characteristics, researchers are now exploring a variety of materials that may potentially exhibit similar or even better nonlinear optical responses.</p>
<p>Critically, previous studies on THz light and graphene predominantly concentrated on singular aspects of the light-matter interaction, usually leading to minimal nonlinear effects. By adopting a more comprehensive approach that combines multiple innovative techniques, the research team was able to amplify the nonlinear responses within graphene structures. This breakthrough could enable new exploration avenues for THz technologies that transcend conventional limits.</p>
<p>The prospects for real-world applications stemming from this research are vast. The ultimate goal is to refine THz frequency conversion techniques and eventually integrate them into practical applications that can lead to efficient, chip-integrated nonlinear THz signal converters. The implications of such technology are profound, potentially transforming industries through enhanced communication systems, smart technologies, and advanced imaging modalities.</p>
<p>As Ali Maleki, a PhD candidate in the Ultrafast THz group at uOttawa, eloquently summarizes, the research not only refines existing techniques but also opens doors to explore a range of materials beyond graphene. This innovation could identify new nonlinear optical mechanisms, further accelerating the integration of THz technologies into everyday applications.</p>
<p>Overall, the implications of the research conducted by Professor Ménard’s team are profound. As the digital world moves towards faster data transmission speeds, the role of THz technologies will become increasingly critical. The intersection of materials science, condensed matter physics, and communication engineering illustrated in this research is emblematic of how interdisciplinary collaboration can lead to remarkable scientific innovations.</p>
<p>As the field of terahertz research continues to evolve, it will undoubtedly usher in a new era of communication technologies and other applications that may reshape how we interact with the world. The pursuit of enhanced THz frequency conversion techniques stands as a testament to the dynamic and innovative nature of scientific research, revealing new possibilities in our ongoing quest for knowledge and technological advancement.</p>
<p>In summary, the study led by the University of Ottawa researchers represents a pivotal moment in the field of wireless communication and signal processing. As researchers continue to explore and harness the potential of THz technologies, the prospects for advanced communication systems, safety measures, and other terrestrial applications will expand significantly, driving advancements that will impact numerous sectors.</p>
<p><strong>Subject of Research</strong>: Not applicable<br />
<strong>Article Title</strong>: Strategies to enhance THz harmonic generation combining multilayered, gated, and metamaterial-based architectures<br />
<strong>News Publication Date</strong>: 9-Jan-2025<br />
<strong>Web References</strong>:<br />
<strong>References</strong>:<br />
<strong>Image Credits</strong>: University of Ottawa  </p>
<p><strong>Keywords</strong>: Electromagnetic waves, Signal processing, Technology, Graphene, Quantum mechanics, Education technology, Light-matter interactions, Electromagnetic spectrum, Image processing, Opacity, Science faculty, Photonics, Metamaterials, Nonlinear optics, Optical properties, Optical devices, Applied optics</p>
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