Multifunctional Materials & Composites (MMC) Laboratory, Department of Engineering Science, University of Oxford, OX1 3PJ, Oxford, UK.
Materials Research Center, Samsung Advanced Institute of Technology (SAIT), Samsung Electronics Co. Ltd., 443-803, Suwon, Republic of Korea.
Adv Mater. 2017 Jul;29(27). doi: 10.1002/adma.201701463. Epub 2017 May 10.
Outstanding functional tunability underpinning metal-organic framework (MOF) confers a versatile platform to contrive next-generation chemical sensors, optoelectronics, energy harvesters, and converters. A rare exemplar of a porous 2D nanosheet material constructed from an extended 3D MOF structure is reported. A rapid supramolecular self-assembly methodology at ambient conditions to synthesize readily exfoliatable MOF nanosheets, functionalized in situ by adopting the guest@MOF (host) strategy, is developed. Nanoscale confinement of light-emitting molecules (as functional guest) inside the MOF pores generates unusual combination of optical, electronic, and chemical properties, arising from the strong host-guest coupling effects. Highly promising photonics-based chemical sensing opened up by the new guest@MOF composite systems is shown. By harnessing host-guest optochemical interactions of functionalized MOF nanosheets, detection of an extensive range of volatile organic compounds and small molecules important for many practical applications has been accomplished.
在金属-有机骨架 (MOF) 下具有出色的功能可调性,为设计下一代化学传感器、光电、能量收集器和转化器提供了多功能平台。本文报道了一种由扩展的 3D MOF 结构构建的多孔 2D 纳米片材料的稀有范例。开发了一种在环境条件下快速进行超分子自组装的方法,以合成易于剥离的 MOF 纳米片,并通过采用客体@MOF(主体)策略原位进行功能化。发光分子(作为功能客体)在 MOF 孔内的纳米尺度限制产生了不寻常的光学、电子和化学性质组合,这源于强的主客体耦合效应。所展示的新型客体@MOF 复合材料系统为基于光子学的化学传感开辟了极具前景的应用。通过利用功能化 MOF 纳米片的主客体光电化学相互作用,已经实现了对广泛的挥发性有机化合物和对许多实际应用很重要的小分子的检测。