Acta Optica Sinica, Volume. 31, Issue 9, 900122(2011)
Study on Enhanced Nonlinearity in Ferroelectric Domain Wall
[1] [1] F. Zernike, J. E. Midwinter. Applied Nonlinear Optics [M]. New York: Wiley, 1973
[2] [2] M. M. Fejer, G. A. Magel, D. H. Jundt et al.. Quasi-phase-matched second harmonic generation: tuning and tolerances[J]. IEEE J. Quantum Electron., 1992, 28(11): 2631~2654
[3] [3] S. Zhu, Y. Y. Zhu, N. B. Ming. Quasi-phase-matched third-harmonic generation in a quasi-periodic optical superlattice[J]. Science, 1977, 278(5539): 843~846
[4] [4] Y. Kong, X. F. Chen, Y. X. Xia. Frequency conversion of femtosecond laser pulses in an engineered aperiodic poled optical superlattice[J]. Appl. Opt., 2007, 46(23): 5698~5702
[5] [5] Y. Q. Qin, C. Zhang, Y. Y. Zhu et al.. Wave-front engineering by Huygens-Fresnel principle for nonlinear optical interactions in domain engineered structures[J]. Phys. Rev. Lett., 2008, 100(6): 063902
[6] [6] R. Huang, X. Chen, J. Shi et al.. Pulse shaping by the electro-optic effect in chirped periodically poled lithium niobate[J]. Appl. Opt., 2007, 46(5): 795~799
[7] [7] X. F. Chen, X. L. Zeng, Y. P. Chen et al.. Optimal design of broadened flat bandpass electro-optic phase modulator based on aperiodic domain-inverted grating[J]. J. Opt. A: Pure Appl. Opt., 2003, 5(3): 159~162
[8] [8] X. F. Chen, J. H. Shi, Y. P. Chen et al.. Electro-optic Solc-type periodically poled wavelength filter in lithium niobate[J]. Opt. Lett., 2003, 28(21): 2115~2117
[9] [9] T . J. Yang, V. Gopalan, P. J. Swart et al.. Direct observation of pinning and bowing of a single ferroelectric domain wall[J]. Phys. Rev. Lett., 1999, 82(20): 4106~4109
[10] [10] T. Braun, W. Kleemann, J. Dec et al.. Creep and relaxation dynamics of domain walls in periodically poled KTiOPO4[J]. Phys. Rev. Lett., 2005, 94(11): 117601
[11] [11] A. Fragemann, V. Pasiskevicius, F. Laurell. Second-order nonlinearities in the domain walls of periodically poled KTiOPO4[J]. Appl. Phys. Lett., 2004, 85(3): 375~377
[12] [12] R. Fischer, S. M. Saltiel, D. N. Neshev et al.. Broadband femtosecond frequency doubling in random media[J]. Appl. Phys. Lett., 2006, 89(19): 191105
[13] [13] S. J. Holmgren, C. Canalias, V. Pasiskevicius. Ultrashort single-shot pulse characterization with high spatial resolution using localized nonlinearities in ferroelectric domain walls[J]. Opt. Lett., 2007, 32(11): 1545~1547
[14] [14] S. M. Saltiel, D. N. Neshev, R. Fischer et al.. Generation of second-harmonic conical waves via nonlinear Bragg diffraction[J]. Phys. Rev. Lett., 2008, 100(10): 103902
[15] [15] S. M. Saltiel, D. N. Neshev, W. Krolikowski et al.. Multiorder nonlinear diffraction in frequency doubling processes[J]. Opt. Lett., 2009, 34(6): 848~850
[16] [16] S. M. Saltiel, Y. Sheng, N. Voloch-Bloch et al.. Cerenkov-type second-harmonic generation in two-dimensional nonlinear photonic structures[J]. IEEE J. Quantum Electron., 2009, 45(11): 1465~1472
[17] [17] Y. Sheng, S. M. Saltiel, W. Krolikowski et al.. Cherenkov-type second-harmonic generation with fundamental beams of different polarizations[J]. Opt. Lett., 2010, 35(9): 1317~1319
[18] [18] Y. Zhang, F. M. Wang, K. Geren et al.. Second-harmonic imaging from a modulated domain structure[J]. Opt. Lett., 2010, 35(2): 178~180
[19] [19] A. S. Aleksandrovsky, A. M. Vyunishev, A. I. Zaitsev et al.. Ultrashort pulses characterization by nonlinear diffraction from virtual beam[J]. Appl. Phys. Lett., 2011, 98(6): 061104
[20] [20] J. Seidel, L. W. Martin, Q. He et al.. Conduction at domain walls in oxide multiferroics[J]. Nature Mater., 2009, 8(3): 229~234
[21] [21] S. Y. Yang, J. Seidel, S. J. Byrnes et al.. Above-bandgap voltages from ferroelectric photovoltaic devices[J]. Nature Nanotechnol., 2010, 5(2): 143~147
[22] [22] X. Deng, H. Ren, H. Lao et al.. Research on Cherenkov second-harmonic generation in periodically poled lithium niobate by femtosecond pulses[J]. J. Opt. Soc. Am. B, 2010, 27(7): 1475~1480
[23] [23] A. Zembrod, H. Puell, J. A. Giordmaine. Surface radiation from non-linear optical polarisation[J]. IEEE J. Quantum Electron., 2003, 4(5): 396
[24] [24] D. A. Kleinman. Theory of second harmonic generation of light[J]. Phys. Rev., 1962, 128(4): 1761~1775
[25] [25] D. A. Scrymgeour, V. Gopalan. Nanoscale piezoelectric response across a single antiparallel ferroelectric domain wall[J]. Phys. Rev. B, 2005, 72(2): 024103
[26] [26] S. E. Skipetrov. Nonlinear optics-disorder is the new order [J]. Nature, 2004, 432(7015): 285~286
[27] [27] X. Deng, H. Ren, H. Lao et al.. Noncollinear efficient continuous optical frequency doubling in periodically poled lithium niobate [J]. Appl. Phys. B: Lasers and Optics, 2010, 100(4): 755~758
[28] [28] X. Deng, H. Ren, X. Chen. Phase-matched second harmonic generation by enhanced nonlinearities in ferroelectric domain walls[C]. CLEO:2011 - Laser Applications to Photonic Applications, OSA Technical Digest (CD), 2011, JThB58
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Chen Xianfeng, Deng Xuewei, Ren Huaijin, An Ning. Study on Enhanced Nonlinearity in Ferroelectric Domain Wall[J]. Acta Optica Sinica, 2011, 31(9): 900122
Category: Reviews
Received: Jul. 12, 2011
Accepted: --
Published Online: Aug. 29, 2011
The Author Email: Xianfeng Chen (xfchen@stju.edu.cn)