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	<title>atomic-level deformation in solids &#8211; Science</title>
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	<title>atomic-level deformation in solids &#8211; Science</title>
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		<title>Mechanical strain creates chirality</title>
		<link>https://scienmag.com/mechanical-strain-creates-chirality/</link>
		
		<dc:creator><![CDATA[Bethany Barker]]></dc:creator>
		<pubDate>Wed, 29 Jul 2026 22:25:08 +0000</pubDate>
				<category><![CDATA[Chemistry]]></category>
		<category><![CDATA[atomic arrangement and chirality]]></category>
		<category><![CDATA[atomic deformation and molecular chirality]]></category>
		<category><![CDATA[atomic-level deformation in solids]]></category>
		<category><![CDATA[chiral crystal structures]]></category>
		<category><![CDATA[effects of mechanical stress on material properties]]></category>
		<category><![CDATA[handedness in materials]]></category>
		<category><![CDATA[influence of mechanical forces on crystal symmetry]]></category>
		<category><![CDATA[long-tail keywords related to chiral materials]]></category>
		<category><![CDATA[mechanical strain-induced chirality]]></category>
		<category><![CDATA[mirror image non-superimposability in matter]]></category>
		<category><![CDATA[screw-like crystal twisting]]></category>
		<category><![CDATA[strain-induced material properties]]></category>
		<guid isPermaLink="false">https://scienmag.com/mechanical-strain-creates-chirality/</guid>

					<description><![CDATA[image: Mechanical strain can deform a solid at the atomic level, forming a chiral structure.  view more  Credit: © Jörg Harms, Zhiyang Zeng (MPSD) Chirality is an important property of matter. It is defined as a property of objects that cannot be superimposed to their mirror images through any combination of rotations or translations, much like [&#8230;]]]></description>
										<content:encoded><![CDATA[<div class="entry">
<figure class="thumbnail pull-right" style="position: relative;z-index: 9999;">
<div class="img-wrapper">
                    <img decoding="async" src="https://scienmag.com/wp-content/uploads/2026/07/1785363908_593_Return-exactly-one-rewritten-English-science-news-headline-for-the.jpeg" alt="Mechanical strain illustration">
                  </div><figcaption class="caption">
                  <strong>image: Mechanical strain can deform a solid at the atomic level, forming a chiral structure. <br />
</strong><br />
                  view <span class="no-break-text">more <i class="fa fa-angle-right"></i></span></p>
<p class="credit">Credit: © Jörg Harms, Zhiyang Zeng (MPSD)</p>
</figcaption></figure>
<p>                            Chirality is an important property of matter. It is defined as a property of objects that cannot be superimposed to their mirror images through any combination of rotations or translations, much like the distinct left and right hands. In chiral crystals, the spatial arrangement of atoms gives rise to a specific handedness, with the crystal structure twisting along one propagation direction in a way similar to a screw. As a consequence, propagation in one direction, for example of an electrical current, may experience different resistance than that propagating in the opposite direction. This effect also influences certain chemical reactions and biological processes, which select for one specific handedness. In this sense, the ability to control chirality on demand, turning a right-handed structure into a left-handed one, is very desirable. </p>
<p>Yet “unlike electrical polarization or magnetization, chirality has lacked a general physical handle for external control,” notes Zhiyang Zeng, first author of this study. The MPSD researchers have now shown that mechanical strain provides precisely such a handle. Rather than synthesizing a chiral material, they begin with a crystal that is not chiral in its unstrained state. Applying strain rearranges the positions of the atoms in the crystal just enough to create a left- or right-handed structure.</p>
<p>To demonstrate this effect, the team monitored the appearance of the crystal’s optical activity – a characteristic signature of chirality – while applying controlled mechanical strain. Remarkably, the handedness of the induced chiral state is determined by the strain conditions. Tensile and compressive strain generate opposite handedness, while applying strain along different crystal directions provides another way to select the resulting chiral state. “Because the deformation is reversible, the induced chirality can be generated, removed, and selected repeatedly,” explains Michael Först, co-author of this publication.</p>
<p>Beyond demonstrating the effect experimentally, the team established a theoretical framework that reveals when crystal symmetry allows this <em>piezochiral effect</em> to occur. They used it to compile an open-access database of candidate materials ( making it possible for researchers worldwide to search for and explore piezochiral crystals.</p>
<p>This work establishes a new strategy for engineering chirality. Instead of being permanently fixed by crystal growth or chemical synthesis, chirality can now be generated, controlled, and switched on demand in an originally achiral material. This is opening new opportunities to control mechanically reconfigurable materials. </p>
<p>“We termed this phenomenon the piezochiral effect,” says Andrea Cavalleri, who led the research in Hamburg (in collaboration with Paolo Radaelli from the University of Oxford). “It enables one to induce chirality in substrates for a large variety of thin films or in bulk materials,  and may enable strategies to, for example, create new types of chiral properties such as superconductivity”.</p>
<p><em>This work received financial support from the Deutsche Forschungsgemeinschaft via the Cluster of Excellence ‘CUI: Advanced Imaging of Matter’. The MPSD is a member of the Center for Free-Electron Laser Science (CFEL), a joint enterprise with DESY and the University of Hamburg.</em></p>
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<div class="details">
<div class="well">
<h4>Journal</h4>
<p>                            Nature
                        </p></div>
<div class="well">
<h4>DOI</h4>
<p>                            <a href="http://dx.doi.org/10.1038/s41586-026-10845-5" target="_blank">10.1038/s41586-026-10845-5 <i class="fa fa-sign-out"></i></a>
                        </div>
<div class="well">
<h4>Method of Research</h4>
<p>                            Experimental study
                        </p></div>
<div class="well">
<h4>Subject of Research</h4>
<p>                            Not applicable
                        </p></div>
<div class="well">
<h4>Article Title</h4>
<p>                            The piezochiral effect
                        </p></div>
<div class="well">
<h4>Article Publication Date</h4>
<p>                            29-Jul-2026
                        </p></div></div></div></div>
<p></p>
<div class="contact-info">
                <strong>Media Contact</strong></p>
<p>                                    Marius Hoffmann</p>
<p>                    Max Planck Institute for the Structure and Dynamics of Matter</p>
<p>                pr@mpsd.mpg.de<br />
            </p>
<p>                    Office: 8998 88044</p></div>
<p></p>
<div class="details">
<div class="well">
<h4>Journal</h4>
<p>                            Nature
                        </p></div>
<div class="well">
<h4>DOI</h4>
<p>                            <a href="http://dx.doi.org/10.1038/s41586-026-10845-5" target="_blank">10.1038/s41586-026-10845-5 <i class="fa fa-sign-out"></i></a>
                        </div>
<div class="well">
<h4>Method of Research</h4>
<p>                            Experimental study
                        </p></div>
<div class="well">
<h4>Subject of Research</h4>
<p>                            Not applicable
                        </p></div>
<div class="well">
<h4>Article Title</h4>
<p>                            The piezochiral effect
                        </p></div>
<div class="well">
<h4>Article Publication Date</h4>
<p>                            29-Jul-2026
                        </p></div></div>
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