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	<title>TU Wien research breakthroughs &#8211; Science</title>
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	<title>TU Wien research breakthroughs &#8211; Science</title>
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		<title>How Unchanging Is the Fine Structure Constant?</title>
		<link>https://scienmag.com/how-unchanging-is-the-fine-structure-constant/</link>
		
		<dc:creator><![CDATA[Bethany Barker]]></dc:creator>
		<pubDate>Mon, 27 Oct 2025 15:18:40 +0000</pubDate>
				<category><![CDATA[Chemistry]]></category>
		<category><![CDATA[atomic nuclei in high-precision experiments]]></category>
		<category><![CDATA[experimental physics advancements]]></category>
		<category><![CDATA[fine structure constant]]></category>
		<category><![CDATA[fundamental constants of physics]]></category>
		<category><![CDATA[innovative timekeeping technologies]]></category>
		<category><![CDATA[low-energy nuclear excited states]]></category>
		<category><![CDATA[precision measurement in physics]]></category>
		<category><![CDATA[probing laws of nature]]></category>
		<category><![CDATA[thorium isotopes in fundamental research]]></category>
		<category><![CDATA[thorium-229 nuclear transition]]></category>
		<category><![CDATA[TU Wien research breakthroughs]]></category>
		<category><![CDATA[ultra-precise nuclear clocks]]></category>
		<guid isPermaLink="false">https://scienmag.com/how-unchanging-is-the-fine-structure-constant/</guid>

					<description><![CDATA[In a remarkable stride for precision measurement and fundamental physics, an international team led by researchers at TU Wien has uncovered groundbreaking details about the thorium-229 nuclear transition, a development that unlocks vast potential not only for innovative timekeeping but also for probing the immutable laws of nature. This breakthrough, publicized in a recent Nature [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>In a remarkable stride for precision measurement and fundamental physics, an international team led by researchers at TU Wien has uncovered groundbreaking details about the thorium-229 nuclear transition, a development that unlocks vast potential not only for innovative timekeeping but also for probing the immutable laws of nature. This breakthrough, publicized in a recent Nature Communications article, substantiates the prospect of using thorium atomic nuclei as ultra-precise nuclear clocks, surpassing the sensitivity of existing methods by several orders of magnitude. The achievement heralds a new era where the foundational constants of physics, long assumed fixed, might finally be scrutinized with unprecedented acuity.</p>
<p>For decades, physicists have speculated about the use of certain atomic nuclei in high-precision experiments that could challenge and extend our understanding of fundamental physics. Thorium-229, an isotope with a uniquely low-energy nuclear excited state, emerged as a promising candidate for such measurements. However, the precise nature and measurement of its nuclear transition remained elusive until the TU Wien group’s decisive discovery in 2024, which definitively identified this long-theorized transition. The ability to manipulate and measure the thorium nuclear states opened new avenues for crafting exotic nuclear clocks with remarkable stability and accuracy.</p>
<p>What sets the thorium-229 nuclear transition apart is its direct dependence on subtle changes in the nucleus’s shape and electromagnetic properties. When the thorium nucleus shifts from its ground state to its excited state, it undergoes a slight reshaping from a more spherical form to a subtly elongated elliptical shape. This shape deformation alters the distribution of protons within the nucleus, thereby modulating the electric field it produces. The sensitivity of this electric field’s shape, particularly its quadrupole moment, to the fine-structure constant makes the thorium nucleus an extraordinary probe for detecting potential variations in fundamental constants.</p>
<p>The fine-structure constant, approximately valued at 1/137, encapsulates the intrinsic strength of electromagnetic interactions. It governs how charged particles engage, dictates the nature of chemical bonding, and influences the interaction between light and matter. Conventionally, physicists have assumed this constant remains invariant across time and space, forming a cornerstone of modern physics. However, theoretical models allowing for minute, slow drifts or even periodic oscillations in this constant could revolutionize our conceptions of fundamental physics and cosmology. Detecting such variations demands instruments of unparalleled sensitivity—tools that the thorium nuclear clock now promises to deliver.</p>
<p>The experimental methodology hinges on leveraging the thorium-containing crystals meticulously fabricated at TU Wien. These crystals embed thorium-229 atoms within a solid lattice, stabilizing them for laser spectroscopy measurements. Conducted in conjunction with international partners in Boulder, Colorado, the spectroscopy experiments assess minute changes in nuclear energy levels and their corresponding electric fields. By monitoring the transition with exquisite precision, the researchers could discern variations in the quadrupole moment of the nuclear electric field and thereby infer changes in the fine-structure constant with significantly enhanced sensitivity.</p>
<p>This monumental advance in measurement precision—three orders of magnitude, or roughly a factor of six thousand, greater than established methods—affords physicists a new window into the constancy of nature’s fundamental parameters. It could potentially reveal dynamic changes in the fine-structure constant, reshaping our understanding of forces that govern the universe. Beyond fundamental physics, this mechanistic understanding of the thorium nucleus’s behavior and electric field variations forms the technical foundation for developing nuclear clocks that outperform the best atomic clocks based on electron transitions.</p>
<p>The development of nuclear clocks utilizing thorium-229’s unique transition represents a paradigm shift in metrology. Unlike electron-based atomic clocks, these nuclear clocks rely on transitions deep within the nucleus rather than the electron cloud, which provides inherently superior stability against environmental disturbances such as magnetic and electric field fluctuations. This renders the thorium clock particularly suited for tests of fundamental constants, gravitational effects, and even dark matter detection, where minute shifts in measurement standards are critical.</p>
<p>Prof. Thorsten Schumm, leading the research at the Institute of Atomic and Subatomic Physics at TU Wien, highlights the exquisite interplay between nuclear structure and fundamental constants. By measuring not just the energy difference between nuclear states but analyzing the accompanying subtle changes in the nuclear electric field geometry, the team can sensitively probe whether constants like the fine-structure constant truly hold universal invariance or fluctuate over time and space.</p>
<p>The international collaboration exemplifies the synergy between material science, quantum optics, and nuclear physics. The material scientists’ expertise in growing thorium-doped crystals with exacting purity and lattice structure enables stable spectroscopic interrogation. Laser physicists in Boulder deploy ultra-stable lasers that interact coherently with the nuclear transition, facilitating fine-tuned resonance measurements. Together, this alliance harnesses the nucleus’s nuclear properties in ways unimaginable until now, culminating in a measurement technique sensitive enough to test the constancy of electromagnetic interaction strength to unprecedented precision.</p>
<p>Beyond offering profound insights into fundamental physics, these thorium nuclear clocks have vast practical implications. Ultra-stable clocks underpin global positioning systems, telecommunications, and synchronization across scientific infrastructures. Advancements in clock precision ripple through technologies, enabling more accurate geodesy, improved navigation systems, and refined tests of general relativity. The nuclear clock’s capabilities may soon allow the detection of gravitational waves or exotic physics phenomena that subtly perturb spacetime or fundamental constants.</p>
<p>This research also opens potential pathways towards new physics that have remained experimentally inaccessible. If future measurements indicate variations in the fine-structure constant, it could suggest physics beyond the Standard Model, hinting at dynamic scalar fields or interactions coupling to fundamental forces. Such results could offer empirical footholds for theories uniting gravity with quantum mechanics or shed light on dark energy and dark matter’s nature.</p>
<p>Essentially, thorium-229’s nuclear transition provides a unique quantum system where nuclear physics meets precision metrology and cosmology. The method’s sensitivity to the fine-structure constant encourages profound reflections on whether the laws of physics remain constant or evolve over cosmic epochs. This work exemplifies the power of combining state-of-the-art experimental physics with advanced nuclear theory to probe the deepest questions about our universe’s fabric.</p>
<p>With the first brilliant demonstrations already underway, the scientific community eagerly anticipates further explorations leveraging thorium nuclear clocks. Enhanced measurement campaigns will refine constraints on temporal or spatial variances of fundamental constants and could transform how we conceive natural laws’ universality. In parallel, optimizing nuclear clock designs may soon yield compact, portable devices with transformative applications in navigation, communication networks, and fundamental science.</p>
<p>This discovery stands as a testament to innovative physics research’s vast potential, marrying atomic and nuclear physics with precision laser spectroscopy and crystal growth techniques. TU Wien’s leadership in this domain heralds an exciting future where atomic nuclei illuminate the dark corners of cosmology, particle physics, and the eternal quest to understand whether the universe’s rules themselves are indeed constant or subtly shifting beneath our gaze.</p>
<hr />
<p><strong>Subject of Research</strong>: Fine-structure constant and thorium-229 nuclear clock transition<br />
<strong>Article Title</strong>: Fine-structure constant sensitivity of the Th-229 nuclear clock transition<br />
<strong>News Publication Date</strong>: 15-Oct-2025<br />
<strong>Web References</strong>: <a href="http://dx.doi.org/10.1038/s41467-025-64191-7">10.1038/s41467-025-64191-7</a><br />
<strong>Image Credits</strong>: TU Wien</p>
<h4><strong>Keywords</strong></h4>
<p>Atomic clocks, Metrology, Basic research, Physics, Experimental physics, Quantum mechanics</p>
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		<post-id xmlns="com-wordpress:feed-additions:1">97060</post-id>	</item>
		<item>
		<title>Transforming CO2 into Fuel Using Battery Waste: A Breakthrough in Sustainable Energy</title>
		<link>https://scienmag.com/transforming-co2-into-fuel-using-battery-waste-a-breakthrough-in-sustainable-energy/</link>
		
		<dc:creator><![CDATA[Faith Mcneil]]></dc:creator>
		<pubDate>Tue, 04 Mar 2025 18:57:02 +0000</pubDate>
				<category><![CDATA[Policy]]></category>
		<category><![CDATA[battery waste recycling]]></category>
		<category><![CDATA[carbon dioxide conversion technology]]></category>
		<category><![CDATA[climate-neutral fuel production]]></category>
		<category><![CDATA[energy sourcing innovations]]></category>
		<category><![CDATA[environmental impact of batteries]]></category>
		<category><![CDATA[hazardous substances in batteries]]></category>
		<category><![CDATA[innovative recycling methods]]></category>
		<category><![CDATA[methane production from CO2]]></category>
		<category><![CDATA[nanocatalyst development]]></category>
		<category><![CDATA[nickel recovery from batteries]]></category>
		<category><![CDATA[sustainable energy solutions]]></category>
		<category><![CDATA[TU Wien research breakthroughs]]></category>
		<guid isPermaLink="false">https://scienmag.com/transforming-co2-into-fuel-using-battery-waste-a-breakthrough-in-sustainable-energy/</guid>

					<description><![CDATA[At the core of contemporary environmental challenges lies the monumental problem of battery waste. This issue not only poses a threat to human health and ecosystems due to hazardous substances contained within used batteries but also provides an untapped reservoir of valuable materials. Among these materials is nickel, essential for the production of new batteries, [&#8230;]]]></description>
										<content:encoded><![CDATA[<p>At the core of contemporary environmental challenges lies the monumental problem of battery waste. This issue not only poses a threat to human health and ecosystems due to hazardous substances contained within used batteries but also provides an untapped reservoir of valuable materials. Among these materials is nickel, essential for the production of new batteries, underscoring the urgent need for improved recycling methods. Researchers at the Vienna University of Technology (TU Wien) have pioneered an innovative process that effectively recovers nickel from spent nickel-metal hydride batteries, tackling both the waste problem and the demand for sustainable materials.</p>
<p>The creative evolution of this research extends beyond mere recycling. In a groundbreaking advancement, the researchers have discovered a method to transform battery waste and used aluminum foil—commonly found in kitchen use—into a nanocatalyst capable of converting carbon dioxide (CO2) into valuable methane. This dual-action approach addresses two significant issues simultaneously: it mitigates waste problems and produces a climate-neutral fuel that could revolutionize energy sourcing in various sectors.</p>
<p>Prof. Günther Rupprechter from the Institute of Materials Chemistry at TU Wien emphasizes the complexity of modern battery recycling. He notes that technologies for recycling nickel-metal hydride and lithium-ion batteries are often hindered by their intricate components. Improper disposal practices can lead to disastrous outcomes, including chemical leaks and pollution. The extraction of nickel from spent Ni-MH batteries has immense economic implications, presenting the potential to supply approximately 16% of the nickel requirement in the European Union by 2030. This leap could facilitate the production of approximately 1.3 to 2.4 million electric vehicles (EVs) annually, highlighting both the environmental and economic urgency driving this research.</p>
<p>Yet, despite this promising outlook, current recycling capacities fall drastically short, currently only meeting about 10% of the demand projected for 2030. This stark statistic underscores the need for significant investments in recycling infrastructure to meet future needs. While integral to resource recovery, mere recycling only scratches the surface of potential benefits. The research team is pivoting towards a practice known as &quot;upcycling,&quot; wherein they not only recycle nickel but also enhance it for future applications, greatly amplifying its impact.</p>
<p>The concept of upcycling transcends traditional recycling methods, allowing materials to be repurposed into higher-value products. By extracting nickel from used Ni-MH batteries and recrystallizing alumina from discarded aluminum foil, the research team has developed a high-performance nanocatalyst employing environmentally friendly green chemistry practices. This innovative catalyst is notably comprised of 92-96% aluminum oxide and 4-8% nickel, creating a dynamic chemical agent well-suited for converting CO2 alongside hydrogen into methane.</p>
<p>One of the standout features of this catalytic process lies in the operational conditions it requires; it successfully operates at atmospheric pressure and a relatively low temperature of 250°C, eliminating the need for unsuitable and costly high-pressure systems. This low energy requirement not only contributes to sustainability but also establishes a framework for potential large-scale industrial applications. As methane is a crucial energy source within various industries, this research positions itself at the nexus of environmental responsibility and practical energy solutions.</p>
<p>Ingrained within this research is the notion of sustainability. The process sunsets traditional waste streams and introduces an innovative technique for CO2 capture, turning a harmful greenhouse gas into a resource. Prof. Rupprechter iterates the significance of scaling up the process to meet industrial demands. Establishing a feedback loop in sustainability through methodological upcycling demonstrates a transformative approach to resource usage, wherein waste becomes a resource that contributes positively to both climate and economic concerns.</p>
<p>Moreover, a critical aspect of catalyst design often overlooked is the longevity and efficacy of the material. While many catalysts can deactivate over time due to structural changes or carbon buildup, this new nanocatalyst exhibited no signs of deactivation during the study period. This resilience broadens the horizon for catalytic processes and emphasizes the need for closed-loop systems in sustainable practices. </p>
<p>To facilitate an even more sustainable approach, the research team is exploring ways to recycle spent catalysts back into their original precursor materials. Dr. Qaisar Maqbool, the study&#8217;s lead author, articulates that reconnecting these components ensures minimal waste generation and maintains the integrity of the overall economic ecosystem. Taking proactive steps toward reintroducing valuable materials back into the production cycle not only enhances economic efficiency but plays a crucial role in retaining an environmentally sound practice.</p>
<p>As the momentum surrounding sustainable materials and energy sources continues to build, the contributions from TU Wien&#8217;s research may well serve as a landmark for future studies and applications in the realm of battery waste recycling and circular economies. The interconnected nature of resource recovery, waste management, and climate solutions illustrates a multifaceted approach to tackling global challenges. Indeed, this bidirectional strategy echoes the calls for innovative thinking and adaptive methodologies as societies move towards a sustainable future.</p>
<p>In conclusion, the ongoing efforts to take waste products and elevate them into high-performing materials are not just academic exercises; they reflect a vital necessity in our quest for sustainability. Time will reveal the potential of these findings to shape energy production and consumption methodologies while also addressing the looming waste crisis left by increasing battery use. TU Wien&#8217;s commitment to innovative recycling and upcycling demonstrates a pathway toward a cleaner, more sustainable world.</p>
<p><strong>Subject of Research</strong>: Recycling and upcycling of nickel from used batteries into nanocatalysts for CO2 methanation.<br />
<strong>Article Title</strong>: Upcycling hazardous waste into high-performance Ni/η-Al2O3 catalysts for CO2 methanation.<br />
<strong>News Publication Date</strong>: 7-Feb-2025<br />
<strong>Web References</strong>: <a href="http://dx.doi.org/10.1039/D4GC05217J">DOI link</a><br />
<strong>References</strong>:<br />
<strong>Image Credits</strong>: Credit: TU Wien  </p>
<p><strong>Keywords</strong>: battery recycling, CO2 utilization, nanocatalysts, sustainable energy, nickel recovery, environmental chemistry, upcycling, circular economy, climate-neutral fuel, green technology, electric vehicles.</p>
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