[1] NOTOMI M, SHINYA A, MITSUGI S, et al. Optical bistable switching action of Si high-Q photonic-crystal nanocavities[J]. Optics Express, 13, 2678-2687(2005).
[2] TANABE T, NOTOMI M, MITSUGI S, et al. Fast bistable all-optical switch and memory on a silicon photonic crystal on-chip[J]. Optics Letters, 30, 2575-2577(2005).
[3] YANIK M F, FAN S H, SOLJAČIĆ M. High-contrast all-optical bistable switching in photonic crystal microcavities[J]. Applied Physics Letters, 83, 2739-2741(2003).
[4] NOZAKI K, SHINYA A, MATSUO S, et al. Ultralow-power all-optical RAM based on nanocavities[J]. Nature Photonics, 6, 248-252(2012).
[5] ALMEIDA V R, LIPSON M. Optical bistability on a silicon chip[J]. Optics Letters, 29, 2387-2389(2004).
[6] PRIEM G, DUMON P, BOGAERTS W, et al. Optical bistability and pulsating behaviour in Silicon-On-Insulator ring resonator structures[J]. Optics Express, 13, 9623-9628(2005).
[7] XU Q F, LIPSON M. Carrier-induced optical bistability in silicon ring resonators[J]. Optics Letters, 31, 341-343(2006).
[8] CHEN S W, ZHANG L B, FEI Y H, et al. Bistability and self-pulsation phenomena in silicon microring resonators based on nonlinear optical effects[J]. Optics Express, 20, 7454-7468(2012).
[9] LÜPKEN N M, HELLWIG T, SCHNACK M, et al. Alloptical switching using transverse modes in integrated waveguides[C]2017 Conference on Lasers ElectroOptics Europe & European Quantum Electronics Conference. Munich: IEEE, 2017.
[10] KONDO S, YAMADA T, YOSHINO M, et al. Revealing intrinsic electro-optic effect in single domain Pb(Zr, Ti)O3 thin films[J]. Applied Physics Letters, 119, 102902(2021).
[11] KURAMOCHI E, NOZAKI K, SHINYA A, et al. Large-scale integration of wavelength-addressable all-optical memories on a photonic crystal chip[J]. Nature Photonics, 8, 474-481(2014).
[12] XIAOGANG T, JUN L, CHENYANG X. Thermal nonlinear effect in high Q factor silicon-on-insulator microring resonator[J]. Optics Communications, 395, 207-211(2017).
[13] ALEXANDER K, GEORGE J P, VERBIST J, et al. Nanophotonic Pockels modulators on a silicon nitride platform[J]. Nature Communications, 9, 3444(2018).
[14] NIKOGOSYAN D N. Nonlinear optical crystals: a complete survey[M]. New Yk: Springer, 2005.
[15] IZYUMSKAYA N, ALIVOV Y I, CHO S J, et al. Processing, structure, properties, and applications of PZT thin films[J]. Critical reviews in solid state and materials sciences, 32, 111-202(2007).
[16] YUST B G, RAZAVI N, PEDRAZA F, et al. Enhancement of nonlinear optical properties of BaTiO3 nanoparticles by the addition of silver seeds[J]. Optics Express, 20, 26511-26520(2012).
[17] TIEN M C, BAUTERS J F, HECK M J R, et al. Ultra-low loss Si3N4 waveguides with low nonlinearity and high power handling capability[J]. Optics Express, 18, 23562-23568(2010).
[18] MOSS D J, MORANDOTTI R, GAETA A L, et al. New CMOS-compatible platforms based on silicon nitride and Hydex for nonlinear optics[J]. Nature Photonics, 7, 597-607(2013).
[19] BOGAERTS W, DE HEYN P, VAN VAERENBERGH T, et al. Silicon microring resonators[J]. Laser & Photonics Reviews, 6, 47-73(2012).
[20] XIANG J L, TORCHY A, GUO X H, et al. All-optical spiking neuron based on passive microresonator[J]. Journal of Lightwave Technology, 38, 4019-4029(2020).
[21] VAN VAERENBERGH T, FIERS M, MECHET P, et al. Cascadable excitability in microrings[J]. Optics Express, 20, 20292-20308(2012).
[22] ARMAROLI A, MALAGUTI S, BELLANCA G, et al. Oscillatory dynamics in nanocavities with noninstantaneous Kerr response[J]. Physical Review A, 84, 053816(2011).
[23] SUGITA A, MIMOTO M, KAWATA Y, et al. Ultrafast optical response of Lead lanthanum zirconium titanate ceramics[C]International Conference on Ultrafast Phenomena. Snowmass, Colado United States: Optical Society of America, 2010: ThE2.