Reciprocal Phase Transition Electro‐Optic Modulation

Author:

Zou Fang1ORCID,Zou Lei2,Tian Ye3,Zhang Yiming4,Bente Erwin3,Hou Weigang5,Liu Yu4,Chen Siming2,Cao Victoria2,Guo Lei5,Li Songsui1,Yan Lianshan1,Pan Wei1,Milosevic Dusan3,Cao Zizheng36ORCID,Koonen Antonius M. J.3,Liu Huiyun2,Zou Xihua1ORCID

Affiliation:

1. School of Information Science and Technology Southwest Jiaotong University Chengdu 611756 China

2. Department of Electronic and Electrical Engineering University College London London WC1E 6BT UK

3. Institute for Photonic Integration Eindhoven University of Technology Eindhoven 5600MB Netherlands

4. Institute of Semiconductors Chinese Academy of Sciences Beijing 100083 China

5. School of Communication and Information Engineering Chongqing University of Posts and Telecommunications Chongqing 400000 China

6. Peng Cheng Laboratory Shenzhen 518055 China

Abstract

AbstractElectro‐optic (EO) modulation is a well‐known and essential topic in the field of communications and sensing, while ultrahigh modulation efficiency is unprecedentedly desired in the current green and data era. However, dramatically increasing the modulation efficiency is difficult in conventional mechanisms, being intrinsically limited by the monotonic mapping relationship between the electrical driving signal and modulated optical signal. To break this bottleneck, a new mechanism termed phase‐transition EO modulation is revealed from the reciprocal transition between two distinct phase planes arising from the Hopf bifurcation, being driven by a transient electrical signal to cross the critical point. A monolithically integrated mode‐locked laser is implemented as a prototype, strikingly achieving an ultrahigh modulation energy efficiency of 3.06 fJ bit−1 improved by about four orders of magnitude and a contrast ratio exceeding 50 dB. The prototype is experimentally implemented for radio‐over‐fiber communication and acoustic sensing. This work indicates a significant advance on the state‐of‐the‐art EO modulation technology and opens a new avenue for green communication and ubiquitous sensing applications.

Funder

National Natural Science Foundation of China

Engineering and Physical Sciences Research Council

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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