Publication | Open Access
Direct band gap carbon superlattices with efficient optical transition
15
Citations
53
References
2016
Year
Materials ScienceEfficient Optical TransitionDiamond-like CarbonOptical MaterialsEngineeringPhotoluminescencePhysicsExcellent Optical AbsorptionNanoelectronicsThreshold EnergyPure Carbon-based SuperlatticesApplied PhysicsQuantum MaterialsCondensed Matter PhysicsHexagonal Boron NitrideCarbon-based MaterialOptoelectronicsSolid-state Physic
We report pure carbon-based superlattices that exhibit direct band gaps and excellent optical absorption and emission properties at the threshold energy. The structures are nearly identical to that of cubic diamond except that defective layers characterized by five- and seven-membered rings are intercalated in the diamond lattice. The direct band gaps lie in the range of 5.6--5.9 eV, corresponding to wavelengths of 210--221 nm. The dipole matrix elements of direct optical transition are comparable to that of GaN, suggesting that the superlattices are promising materials as an efficient deep ultraviolet light emitter. Molecular dynamics simulations show that the superlattices are thermally stable even at a high temperature of 2000 K. We provide a possible route to the synthesis of superlattices through wafer bonding of diamond (100) surfaces.
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