Room-Temperature Spin Transport in Metal Nanocluster-Based Spin Valves.

Angew Chem Int Ed Engl

CAS Key Laboratory of Nanosystem and Hierarchical Fabrication, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, Beijing, 100190, P. R. China.

Published: January 2023

AI Article Synopsis

  • Quantum-confined atomically precise metal nanoclusters (MNCs) are new hybrid semiconductors used in areas like chemical sensing and biomedicine.
  • Researchers created the first MNC-based spin valves (SVs), which show a significant magnetoresistance (MR) of 1.6% at room temperature.
  • The spin-dependent properties of these SVs can be manipulated by altering the atomic structure of MNCs, with the variations in behavior linked to differences in spin-orbit coupling (SOC) effects.

Article Abstract

As a new type of inorganic-organic hybrid semiconductor, quantum-confined atomically precise metal nanoclusters (MNCs) have been widely applied in the fields of chemical sensing, optical imaging, biomedicine and catalysis. Herein, we successfully design and fabricate the first example of MNC-based spin valves (SVs) that exhibit remarkable magnetoresistance (MR) value up to 1.6 % even at room temperature (300 K). The concomitant photoresponse of MNC-based SVs unambiguously confirms that the spin-polarized electron transmission takes place across the MNC interlayer. Furthermore, the spin-dependent transport property of MNC-based SVs is largely varied by changing the atomic structure of MNCs. Both experimental proofs and quantum chemistry calculations reveal that the atomic structure-discriminative spin transport behavior is attributed to the distinct spin-orbit coupling (SOC) effect of MNCs.

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Source
http://dx.doi.org/10.1002/anie.202213208DOI Listing

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