论文标题
互惠相过渡的电气调制
Reciprocal phase transition-enabled electro-optic modulation
论文作者
论文摘要
电形(EO)调制是通信和传感领域中众所周知且重要的话题。在当前的绿色和数据时代,它的超高效率是前所未有的。但是,由于电信号和调制光信号之间的单调映射关系,很难大大提高调制效率。在这里,从分叉产生的两个不同相位平面之间的相互转变揭示了一种称为相变的新机制。值得注意的是,单一集成的模式锁定激光(MLL)作为原型实现。生成和调制24.8-GHz射频信号,达到3.06 FJ/位的调制能效率提高了约四个数量级,对比度比50 dB。因此,基于MLL的相位转变EO调制的特征是超高调制效率和超高对比比,正如实验性的纤维和水下声音感应系统中所证明的那样。这种相变的EO调制为绿色通信和无处不在的连接开辟了新的途径。
Electro-optic (EO) modulation is a well-known and essential topic in the field of communications and sensing. Its ultrahigh efficiency is unprecedentedly desired in the current green and data era. However, dramatically increasing the modulation efficiency is difficult due to the monotonic mapping relationship between the electrical signal and modulated optical signal. Here, a new mechanism termed phase-transition EO modulation is revealed from the reciprocal transition between two distinct phase planes arising from the bifurcation. Remarkably, a monolithically integrated mode-locked laser (MLL) is implemented as a prototype. A 24.8-GHz radio-frequency signal is generated and modulated, achieving a modulation energy efficiency of 3.06 fJ/bit improved by about four orders of magnitude and a contrast ratio exceeding 50 dB. Thus, MLL-based phase-transition EO modulation is characterised by ultrahigh modulation efficiency and ultrahigh contrast ratio, as experimentally proved in radio-over-fibre and underwater acoustic-sensing systems. This phase-transition EO modulation opens a new avenue for green communication and ubiquitous connections.