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Enhanced Second Harmonic Generation from Ferroelectric HfO2-Based Hybrid Metasurfaces.
Qin, Jun; Huang, Fei; Li, Xinyue; Deng, Longjiang; Kang, Tongtong; Markov, Andrey; Yue, Fuyong; Chen, Yiqin; Wen, Xinglin; Liu, Sheng; Xiong, Qihua; Semin, Sergey; Rasing, Theo; Modotto, Daniele; Morandotti, Roberto; Xu, Jialiang; Duan, Huigao; Bi, Lei.
Affiliation
  • Qin J; National Engineering Center of Electromagnetic Radiation Wave Control Materials, School of Electronic Science and Engineering , University of Electronic Science and Technology of China , Chengdu 610054 , China.
  • Huang F; National Engineering Center of Electromagnetic Radiation Wave Control Materials, School of Electronic Science and Engineering , University of Electronic Science and Technology of China , Chengdu 610054 , China.
  • Li X; School of Materials Science and Engineering, National Institute for Advanced Materials , Nankai University , Tongyan Road 38 , Tianjin 300350 , P. R. China.
  • Deng L; Institute for Molecules and Materials (IMM) , Radboud University , Heyendaalseweg 135 , 6525AJ Nijmegen , The Netherlands.
  • Kang T; National Engineering Center of Electromagnetic Radiation Wave Control Materials, School of Electronic Science and Engineering , University of Electronic Science and Technology of China , Chengdu 610054 , China.
  • Markov A; National Engineering Center of Electromagnetic Radiation Wave Control Materials, School of Electronic Science and Engineering , University of Electronic Science and Technology of China , Chengdu 610054 , China.
  • Yue F; INRS-Énergie , Matériaux et Télécommunications , Varennes , QC G1K 9A9 , Canada.
  • Chen Y; INRS-Énergie , Matériaux et Télécommunications , Varennes , QC G1K 9A9 , Canada.
  • Wen X; College of Mechanical and Vehicle Engineering , Hunan University , Changsha 410082 , China.
  • Liu S; Division of Physics and Applied Physics, School of Physical and Mathematical Sciences , Nanyang Technological University , Singapore 637371.
  • Xiong Q; Division of Physics and Applied Physics, School of Physical and Mathematical Sciences , Nanyang Technological University , Singapore 637371.
  • Semin S; Division of Physics and Applied Physics, School of Physical and Mathematical Sciences , Nanyang Technological University , Singapore 637371.
  • Rasing T; Institute for Molecules and Materials (IMM) , Radboud University , Heyendaalseweg 135 , 6525AJ Nijmegen , The Netherlands.
  • Modotto D; Institute for Molecules and Materials (IMM) , Radboud University , Heyendaalseweg 135 , 6525AJ Nijmegen , The Netherlands.
  • Morandotti R; Dipartimento di Ingegneria dell'Informazione , Università di Brescia , via Branze 38 , 25123 Brescia , Italy.
  • Xu J; INRS-Énergie , Matériaux et Télécommunications , Varennes , QC G1K 9A9 , Canada.
  • Duan H; ITMO University , St. Petersburg 197101 , Russia.
  • Bi L; Institute of Fundamental and Frontier Sciences , University of Electronic Science and Technology of China , Chengdu 610054 , China.
ACS Nano ; 13(2): 1213-1222, 2019 Feb 26.
Article in En | MEDLINE | ID: mdl-30629429
Integrated nonlinear metasurfaces leading to high-efficiency optical second harmonic generation (SHG) are highly desirable for optical sensing, imaging, and quantum photonic systems. Compared to traditional metal-only metasurfaces, their hybrid counterparts, where a noncentrosymmetric nonlinear photonic material is incorporated in the near-field of a metasurface, can significantly boost SHG efficiency. However, it is difficult to integrate such devices on-chip due to material incompatibilities, thickness scaling challenges, and the narrow band gaps of nonlinear optical materials. Here, we demonstrate significantly enhanced SHG in on-chip integrated metasurfaces by using nanometer thin films of ferroelectric Y:HfO2. This material has the merit of CMOS compatibility, ultraviolet transparency up to 250 nm, and significant scalability down to sub-10 nm when deposited on silicon. We observe a 20-fold magnitude enhancement of the SHG intensity from the hybrid metasurface compared to a bare ferroelectric HfO2 thin film. Moreover, a 3-fold SHG enhancement is observed from the hybrid metasurface compared to a control structure using nonferroelectric HfO2, demonstrating a major contribution to the SHG signal from ferroelectric Y:HfO2. The effective second-order nonlinear optical coefficient χ(2) of Y:HfO2 is determined to be 6.0 ± 0.5 pm/V, which is comparable to other complex nonlinear photonic oxide materials. Our work provides a general pathway to build an efficient on-chip nanophotonic nonlinear light source for SHG using ferroelectric HfO2 thin films.
Key words

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Nano Year: 2019 Document type: Article Affiliation country: China Country of publication: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: ACS Nano Year: 2019 Document type: Article Affiliation country: China Country of publication: Estados Unidos