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  <title><![CDATA[School of Physics Fall Colloquium Series- Dr. Mark Dean(BNL)]]></title>
  <body><![CDATA[<p><strong>Speaker: </strong>Dr. Mark Dean(BNL)</p><p><strong>Host: </strong>Yao Wang&nbsp;</p><p><strong>Title: </strong>Exploring many-body excitons with resonant inelastic X‑ray scattering</p><p><strong>Abstract:</strong> Excitons—correlated electron–hole pairs—play a central role in the optical and electronic properties of solids. In quantum materials, strong electronic correlations and exchange interactions can produce unconventional&nbsp;many-body excitons whose momentum dependence, symmetry, and coupling to magnetism remain poorly&nbsp;understood. In this talk, I will show how resonant inelastic X-ray scattering (RIXS) [1], with its combined&nbsp;sensitivity to energy, momentum, and excitation symmetry, provides a powerful view of these states. I will&nbsp;discuss magnetically propagating Hund’s excitons in NiPS3 [2], dispersive dark excitons in CrI3 [3], and&nbsp;anisotropic excitonic states in CrSBr [4]. Together, these results illustrate how excitons can encode and&nbsp;transmit the intertwined spin, orbital, and charge character of quantum materials. I will conclude with an&nbsp;outlook on using ultrafast pump–probe RIXS to create and track such states away from equilibrium.</p><p><strong>Bio:</strong> I am the X-ray Scattering Group Leader at Brookhaven and run a research program that focuses on resonant&nbsp;inelastic X-ray scattering (RIXS) of quantum materials. My research interests include complex oxides, strongly&nbsp;spin–orbit-coupled materials, quantum heterostructures, non-equilibrium states, and topology in crystalline&nbsp;materials. I earned my PhD from the University of Cambridge in 2010. My work has been recognized with a&nbsp;Department of Energy Early Career Award in 2014 and the Distinction of Tenure from Brookhaven in 2022,&nbsp;and I currently serve on the editorial board of Physical Review X.</p><p>&nbsp;</p>]]></body>
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      <value><![CDATA[Dr. Mark Dean(BNL) Exploring many-body excitons with resonant inelastic  X‑ray scattering]]></value>
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      <value><![CDATA[<p><strong>Abstract:</strong> Excitons—correlated electron–hole pairs—play a central role in the optical and electronic properties of solids.&nbsp;In quantum materials, strong electronic correlations and exchange interactions can produce unconventional&nbsp;many-body excitons whose momentum dependence, symmetry, and coupling to magnetism remain poorly&nbsp;understood. In this talk, I will show how resonant inelastic X-ray scattering (RIXS) [1], with its combined&nbsp;sensitivity to energy, momentum, and excitation symmetry, provides a powerful view of these states. I will&nbsp;discuss magnetically propagating Hund’s excitons in NiPS3 [2], dispersive dark excitons in CrI3 [3], and&nbsp;anisotropic excitonic states in CrSBr [4]. Together, these results illustrate how excitons can encode and&nbsp;transmit the intertwined spin, orbital, and charge character of quantum materials. I will conclude with an&nbsp;outlook on using ultrafast pump–probe RIXS to create and track such states away from equilibrium.</p><p>&nbsp;</p><p>&nbsp;</p>]]></value>
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      <value><![CDATA[Marcus Nanotechnology room 1116-1118]]></value>
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