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Optical logic operation via plasmon-exciton interconversion in 2D semiconductors

机译:二维半导体中通过等离激子互激转换的光学逻辑运算

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摘要

Nanophotonic devices manipulating light for high-speed computing are a counterpart of speed-limited electronic circuits. Although plasmonic circuits are a promising platform for subwavelength miniaturization, the logic-operation principle is still limited to mimicking those of photonic waveguides using phase shifts, polarization, interference, and resonance. Meanwhile, reconfigurable interconversion between exciton and plasmon engender emerging applications like exciton transistors and multiplexers, exciton amplifiers, chiral valleytronics, and nonlinear excitonics. Here, we propose optical logic principles realized by exciton-plasmon interconversion in Ag-nanowires (NW) overlapped on transition metal dichalcogenides (TMDs) monolayers. Excitons generated from TMDs couple to the Ag-NW plasmons, eventually collected as output signals at the Ag-NW end. Using two lasers, we demonstrate AND gate by modulating single excitons in Ag-NW on MoS2 and a half-adder by modulating dual excitons in lateral WSe2 and WS2. Moreover, a 4-to-2 binary encoder is realized in partially overlapped MoSe2 and MoS2 using four-terminal laser inputs. Our results represent great advances in communication processing for optical photonics integrable with subwavelength architectures.
机译:操纵光以进行高速计算的纳米光子设备是限速电子电路的对应产品。尽管等离激元电路是实现亚波长小型化的有前途的平台,但逻辑操作原理仍然仅限于使用相移,偏振,干扰和谐振来模仿光子波导的逻辑。同时,激子和等离激元之间的可重构互转换产生了新兴应用,例如激子晶体管和多路复用器,激子放大器,手性谷电子器件和非线性激子器件。在这里,我们提出了光学逻辑原理,该原理是通过在过渡金属二卤化物(TMDs)单层上重叠的Ag-纳米线(NW)中进行激子-等离子体激元互变而实现的。从TMD产生的激子与Ag-NW等离子体激元耦合,最终在Ag-NW端收集为输出信号。使用两个激光,我们通过调制MoS2上Ag-NW中的单个激子来演示与门,并通过调制侧面WSe2和WS2中的双激子来演示半加法器。此外,使用四端激光输入在部分重叠的MoSe2和MoS2中实现了4到2二进制编码器。我们的结果代表了与亚波长架构集成的光子学通信处理的巨大进步。

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