Publication | Open Access
MXenes for future nanophotonic device applications
58
Citations
166
References
2020
Year
Optical MaterialsEngineeringDifferent MxenesLow Dimensional MaterialOptoelectronic DevicesSemiconductorsElectronic DevicesTransition Metal ElementsPhotodetectorsTransition Metal CarbidesCompound SemiconductorMxenesNanophotonicsMaterials ScienceNanoscale SystemPhotoluminescenceNanotechnologyOptoelectronic MaterialsPhotonic MaterialsElectronic MaterialsApplied PhysicsOptoelectronicsOptical Devices
Abstract Two-dimensional (2D) layers of transition metal carbides, nitrides, or carbonitrides, collectively referred to as MXenes, are considered as the new family of 2D materials for the development of functional building blocks for optoelectronic and photonic device applications. Their advantages are based on their unique and tunable electronic and optical properties, which depend on the modulation of transition metal elements or surface functional groups. In this paper, we have presented a comprehensive review of MXenes to suggest an insightful perspective on future nanophotonic and optoelectronic device applications based on advanced synthesis processes and theoretically predicted or experimentally verified material properties. Recently developed optoelectronic and photonic devices, such as photodetectors, solar cells, fiber lasers, and light-emitting diodes are summarized in this review. Wide-spectrum photodetection with high photoresponsivity, high-yield solar cells, and effective saturable absorption were achieved by exploiting different MXenes. Further, the great potential of MXenes as an electrode material is predicted with a controllable work function in a wide range (1.6–8 eV) and high conductivity (~10 4 S/cm), and their potential as active channel material by generating a tunable energy bandgap is likewise shown. MXene can provide new functional building blocks for future generation nanophotonic device applications.
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