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Gate-controlled generation of optical pulse trains using individual carbon nanotubes

机译:使用单个碳纳米管进行门控式光脉冲序列生成

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摘要

In single-walled carbon nanotubes, electron–hole pairs form tightly bound excitons because of limited screening. These excitons display a variety of interactions and processes that could be exploited for applications in nanoscale photonics and optoelectronics. Here we report on optical pulse-train generation from individual air-suspended carbon nanotubes under an application of square-wave gate voltages. Electrostatically induced carrier accumulation quenches photoluminescence, while a voltage sign reversal purges those carriers, resetting the nanotubes to become luminescent temporarily. Frequency-domain measurements reveal photoluminescence recovery with characteristic frequencies that increase with excitation laser power, showing that photoexcited carriers provide a self-limiting mechanism for pulsed emission. Time-resolved measurements directly confirm the presence of an optical pulse train synchronized to the gate voltage signal, and flexible control over pulse timing and duration is also demonstrated. These results identify an unconventional route for optical pulse generation and electrical-to-optical signal conversion, opening up new prospects for controlling light at the nanoscale.
机译:在单壁碳纳米管中,由于有限的筛选,电子-空穴对形成紧密结合的激子。这些激子显示出各种相互作用和过程,可用于纳米级光子学和光电子学中。在这里,我们报道了在施加方波栅极电压的情况下,各个空气悬浮的碳纳米管产生的光脉冲序列。静电引起的载流子积累会淬灭光致发光,而电压符号反转会清除这些载流子,使纳米管复位以暂时发光。频域测量揭示了具有随激励激光功率而增加的特征频率的光致发光恢复,表明光激发载流子为脉冲发射提供了一种自限机制。时间分辨的测量结果直接证实了与栅极电压信号同步的光脉冲序列的存在,并且还展示了对脉冲时序和持续时间的灵活控制。这些结果确定了用于光脉冲产生和电光信号转换的非常规途径,为控制纳米级的光开辟了新的前景。

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