4.8 Article

Light-Induced Macroscopic Peeling of Single Crystal Driven by Photoisomeric Nano-Optical Switching

期刊

CHEMISTRY OF MATERIALS
卷 31, 期 13, 页码 4927-4935

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.chemmater.9b01738

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资金

  1. U.S. Department of Energy (DOE) Office of Science, Office of Basic Energy Sciences [DE-AC02-06CH11357]
  2. U.S. DOE [DE-AC02-06CH11357]
  3. Division of Chemistry (CHE), National Science Foundation [NSF/CHE-1346572, NSF/CHE-1834750]
  4. Division of Materials Research (DMR), National Science Foundation [NSF/CHE-1346572, NSF/CHE-1834750]
  5. National Science Foundation [NSF/DMR-1531283]
  6. National Council of Science and Technology of Mexico (CONACyT)
  7. Cambridge Trust [217553]
  8. BASF/Royal Academy of Engineering Senior Research Fellowship in Data Driven Molecular Engineering of Functional Materials
  9. ISIS Facility, STFC Rutherford Appleton Laboratory, UK

向作者/读者索取更多资源

Single-crystal optical actuators are emerging as a prospective material form for nano-optical mechanical switching, sensing, or transduction device applications in nano technology and quantum technology. Crystal-lattice strain effects lie at the molecular origins of their macroscopic optical behavior, and linkage photoisomerization is an attractive source of optical actuation, if only suitably functioning materials of this ilk could be found. We discover eta(1)-SO2 to eta(1)-OSO single-crystal linkage photoisomerization in [Ru(NH3)(4)(SO2)(3-phenylpyridine)]Cl-2 center dot H2O, which behaves macroscopically as a single-crystal optical actuator, whereby the crystal peels in response to light-induction at 100 K. It thermally recovers, whereupon the crystal exhibits remarkable restorative properties. We apply photocrystallography alongside concerted optical microscopy and optical absorption spectroscopy to reveal how the molecular origins of photoisomerization induce crystal-lattice strain that engenders this macroscopic crystal peeling effect. Linking structure and function across molecular and macroscopic length scales showcases a means by which single-crystal optically actuating materials could be systematically designed.

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