Synthesis, Characterization, and Resistive Memory Behaviors of Highly Strained Cyclometalated Platinum(II) Nanohoops

Strained carbon nanohoops exhibit attractive photophysical properties due to their unique π-conjugated structure. However, incorporation of such nanohoops into the pincer ligand of metal complexes has rarely been explored. Herein, a new family of highly strained cyclometalated platinum­(II) nanohoop...

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Veröffentlicht in:Journal of the American Chemical Society 2024-05, Vol.146 (19), p.13226-13235
Hauptverfasser: Xu, Youzhi, Leung, Ming-Yi, Yan, Liangliang, Chen, Ziyong, Li, Panpan, Cheng, Yat-Hin, Chan, Michael Ho-Yeung, Yam, Vivian Wing-Wah
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Sprache:eng
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Zusammenfassung:Strained carbon nanohoops exhibit attractive photophysical properties due to their unique π-conjugated structure. However, incorporation of such nanohoops into the pincer ligand of metal complexes has rarely been explored. Herein, a new family of highly strained cyclometalated platinum­(II) nanohoops has been synthesized and characterized. Strain-promoted C–H bond activation has been observed during the metal coordination process, and Hückel–Möbius topology and random-columnar packing in the solid state are found. Transient absorption spectroscopy revealed the size-dependent excited state properties of the nanohoops. Moreover, the nanohoops have been successfully employed as active materials in the fabrication of solution-processable resistive memory devices, including the use of the smallest platinum­(II) nanohoop for the fabrication of a binary memory, with low switching threshold voltages of ca. 1.5 V, high ON/OFF current ratios, and good stability. These results demonstrate that strain incorporation into the structure can be an effective strategy to fundamentally fine-tune the reactivity, optoelectronic, and resistive memory properties.
ISSN:0002-7863
1520-5126
1520-5126
DOI:10.1021/jacs.4c01243