Literature DB >> 29892031

Gate-tunable frequency combs in graphene-nitride microresonators.

Baicheng Yao1,2,3, Shu-Wei Huang4,5, Yuan Liu6,7, Abhinav Kumar Vinod8, Chanyeol Choi8, Michael Hoff8, Yongnan Li8, Mingbin Yu9,10, Ziying Feng11, Dim-Lee Kwong9,12, Yu Huang6, Yunjiang Rao13, Xiangfeng Duan14, Chee Wei Wong15.   

Abstract

Optical frequency combs, which emit pulses of light at discrete, equally spaced frequencies, are cornerstones of modern-day frequency metrology, precision spectroscopy, astronomical observations, ultrafast optics and quantum information1-7. Chip-scale frequency combs, based on the Kerr and Raman nonlinearities in monolithic microresonators with ultrahigh quality factors8-10, have recently led to progress in optical clockwork and observations of temporal cavity solitons11-14. But the chromatic dispersion within a laser cavity, which determines the comb formation15,16, is usually difficult to tune with an electric field, whether in microcavities or fibre cavities. Such electrically dynamic control could bridge optical frequency combs and optoelectronics, enabling diverse comb outputs in one resonator with fast and convenient tunability. Arising from its exceptional Fermi-Dirac tunability and ultrafast carrier mobility17-19, graphene has a complex optical dispersion determined by its optical conductivity, which can be tuned through a gate voltage20,21. This has brought about optoelectronic advances such as modulators22,23, photodetectors 24 and controllable plasmonics25,26. Here we demonstrate the gated intracavity tunability of graphene-based optical frequency combs, by coupling the gate-tunable optical conductivity to a silicon nitride photonic microresonator, thus modulating its second- and higher-order chromatic dispersions by altering the Fermi level. Preserving cavity quality factors up to 106 in the graphene-based comb, we implement a dual-layer ion-gel-gated transistor to tune the Fermi level of graphene across the range 0.45-0.65 electronvolts, under single-volt-level control. We use this to produce charge-tunable primary comb lines from 2.3 terahertz to 7.2 terahertz, coherent Kerr frequency combs, controllable Cherenkov radiation and controllable soliton states, all in a single microcavity. We further demonstrate voltage-tunable transitions from periodic soliton crystals to crystals with defects, mapped by our ultrafast second-harmonic optical autocorrelation. This heterogeneous graphene microcavity, which combines single-atomic-layer nanoscience and ultrafast optoelectronics, will help to improve our understanding of dynamical frequency combs and ultrafast optics.

Entities:  

Year:  2018        PMID: 29892031     DOI: 10.1038/s41586-018-0216-x

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  13 in total

1.  Hot carriers in graphene - fundamentals and applications.

Authors:  Mathieu Massicotte; Giancarlo Soavi; Alessandro Principi; Klaas-Jan Tielrooij
Journal:  Nanoscale       Date:  2021-04-29       Impact factor: 7.790

Review 2.  Dynamic and Active THz Graphene Metamaterial Devices.

Authors:  Lan Wang; Ning An; Xusheng He; Xinfeng Zhang; Ao Zhu; Baicheng Yao; Yaxin Zhang
Journal:  Nanomaterials (Basel)       Date:  2022-06-17       Impact factor: 5.719

Review 3.  Optical ultrasound sensors for photoacoustic imaging: a narrative review.

Authors:  Bo Fu; Yuan Cheng; Ce Shang; Jing Li; Gang Wang; Chenghong Zhang; Jingxuan Sun; Jianguo Ma; Xunming Ji; Boqu He
Journal:  Quant Imaging Med Surg       Date:  2022-02

4.  Hybrid integrated photonics using bulk acoustic resonators.

Authors:  Hao Tian; Junqiu Liu; Bin Dong; J Connor Skehan; Michael Zervas; Tobias J Kippenberg; Sunil A Bhave
Journal:  Nat Commun       Date:  2020-06-17       Impact factor: 14.919

5.  Electrically controllable laser frequency combs in graphene-fibre microresonators.

Authors:  Chenye Qin; Kunpeng Jia; Qianyuan Li; Teng Tan; Xiaohan Wang; Yanhong Guo; Shu-Wei Huang; Yuan Liu; Shining Zhu; Zhenda Xie; Yunjiang Rao; Baicheng Yao
Journal:  Light Sci Appl       Date:  2020-11-09       Impact factor: 17.782

6.  Kilometers Long Graphene-Coated Optical Fibers for Fast Thermal Sensing.

Authors:  Yiyong Guo; Bing Han; Junting Du; Shanshan Cao; Hua Gao; Ning An; Yiwei Li; Shujie An; Zengling Ran; Yue Lin; Wencai Ren; Yunjiang Rao; Baicheng Yao
Journal:  Research (Wash D C)       Date:  2021-03-18

7.  Gain-through-filtering enables tuneable frequency comb generation in passive optical resonators.

Authors:  Florent Bessin; Auro M Perego; Kestutis Staliunas; Sergei K Turitsyn; Alexandre Kudlinski; Matteo Conforti; Arnaud Mussot
Journal:  Nat Commun       Date:  2019-10-03       Impact factor: 14.919

8.  Real-time transition dynamics and stability of chip-scale dispersion-managed frequency microcombs.

Authors:  Yongnan Li; Shu-Wei Huang; Bowen Li; Hao Liu; Jinghui Yang; Abhinav Kumar Vinod; Ke Wang; Mingbin Yu; Dim-Lee Kwong; Hui-Tian Wang; Kenneth Kin-Yip Wong; Chee Wei Wong
Journal:  Light Sci Appl       Date:  2020-04-03       Impact factor: 17.782

Review 9.  2D Material Optoelectronics for Information Functional Device Applications: Status and Challenges.

Authors:  Teng Tan; Xiantao Jiang; Cong Wang; Baicheng Yao; Han Zhang
Journal:  Adv Sci (Weinh)       Date:  2020-04-08       Impact factor: 16.806

10.  Biochemical sensing in graphene-enhanced microfiber resonators with individual molecule sensitivity and selectivity.

Authors:  Zhongxu Cao; Baicheng Yao; Chenye Qin; Run Yang; Yanhong Guo; Yufeng Zhang; Yu Wu; Lei Bi; Yuanfu Chen; Zhenda Xie; Gangding Peng; Shu-Wei Huang; Chee Wei Wong; Yunjiang Rao
Journal:  Light Sci Appl       Date:  2019-11-22       Impact factor: 17.782

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