Polarization-independent multiple Fano resonances in plasmonic nonamers for multimode-matching enhanced multiband second-harmonic generation SD Liu, ESP Leong, GC Li, Y Hou, J Deng, JH Teng, HC Ong, DY Lei ACS nano 10 (1), 1442-1453, 2016 | 163 | 2016 |
Coherent exciton-plasmon interaction in the hybrid semiconductor quantum dot and metal nanoparticle complex MT Cheng, SD Liu, HJ Zhou, ZH Hao, QQ Wang Optics letters 32 (15), 2125-2127, 2007 | 153 | 2007 |
Pronounced fano resonance in single gold split nanodisks with 15 nm split gaps for intensive second harmonic generation S Zhang, GC Li, Y Chen, X Zhu, SD Liu, DY Lei, H Duan ACS nano 10 (12), 11105-11114, 2016 | 145 | 2016 |
Multiple Fano resonances in plasmonic heptamer clusters composed of split nanorings SD Liu, Z Yang, RP Liu, XY Li Acs Nano 6 (7), 6260-6271, 2012 | 126 | 2012 |
High Q-factor with the excitation of anapole modes in dielectric split nanodisk arrays SD Liu, ZX Wang, WJ Wang, JD Chen, ZH Chen Optics Express 25 (19), 22375-22387, 2017 | 106 | 2017 |
Illuminating dark plasmons of silver nanoantenna rings to enhance exciton–plasmon interactions HM Gong, L Zhou, XR Su, S Xiao, SD Liu, QQ Wang Advanced Functional Materials 19 (2), 298-303, 2009 | 96 | 2009 |
High sensitivity localized surface plasmon resonance sensing using a double split nanoring cavity SD Liu, Z Yang, RP Liu, XY Li The Journal of Physical Chemistry C 115 (50), 24469-24477, 2011 | 94 | 2011 |
Record‐Low‐Threshold Lasers Based on Atomically Smooth Triangular Nanoplatelet Perovskite G Li, T Che, X Ji, S Liu, Y Hao, Y Cui, S Liu Advanced Functional Materials 29 (2), 1805553, 2019 | 77 | 2019 |
High sensitivity and large field enhancement of symmetry broken Au nanorings: effect of multipolar plasmon resonance and propagation SD Liu, ZS Zhang, QQ Wang Optics express 17 (4), 2906-2917, 2009 | 66 | 2009 |
Resonance Coupling between Molecular Excitons and Nonradiating Anapole Modes in Silicon Nanodisk-J-Aggregate Heterostructures SD Liu, JL Fan, WJ Wang, JD Chen, ZH Chen ACS Photonics 5 (4), 1628-1639, 2018 | 64 | 2018 |
Optofluidic laser array based on stable high-Q Fabry–Pérot microcavities W Wang, C Zhou, T Zhang, J Chen, S Liu, X Fan Lab on a chip 15 (19), 3862-3869, 2015 | 61 | 2015 |
Fano resonances generated in a single dielectric homogeneous nanoparticle with high structural symmetry DJ Cai, YH Huang, WJ Wang, WB Ji, JD Chen, ZH Chen, SD Liu The Journal of Physical Chemistry C 119 (8), 4252-4260, 2015 | 57 | 2015 |
Plasmonic-induced optical transparency in the near-infrared and visible range with double split nanoring cavity SD Liu, Z Yang, RP Liu, XY Li Optics express 19 (16), 15363-15370, 2011 | 50 | 2011 |
Modulating emission polarization of semiconductor quantum dots through surface plasmon of metal nanorod MT Cheng, SD Liu, QQ Wang Applied Physics Letters 92 (16), 162107, 2008 | 46 | 2008 |
Surface plasmon propagation in a pair of metal nanowires coupled to a nanosized optical emitter SD Liu, MT Cheng, ZJ Yang, QQ Wang Optics letters 33 (8), 851-853, 2008 | 44 | 2008 |
Multipole-plasmon-enhanced Förster energy transfer between semiconductor quantum dots via dual-resonance nanoantenna effects XR Su, W Zhang, L Zhou, XN Peng, DW Pang, SD Liu, ZK Zhou, ... Applied Physics Letters 96 (4), 043106, 2010 | 43 | 2010 |
Excitation of Multiple Fano Resonances in Plasmonic Clusters with D 2 h Point Group Symmetry SD Liu, YB Yang, ZH Chen, WJ Wang, HM Fei, MJ Zhang, YC Wang The Journal of Physical Chemistry C 117 (27), 14218-14228, 2013 | 36 | 2013 |
Ultrafast multi-target control of tightly focused light fields Y Zhang, X Liu, H Lin, D Wang, E Cao, S Liu, Z Nie, B Jia Opto-Electronic Advances 5 (3), 210026-1-210026-12, 2022 | 34 | 2022 |
Double Fano resonances in nanoring cavity dimers: The effect of plasmon hybridization between dark subradiant modes LY Yin, YH Huang, X Wang, ST Ning, SD Liu AIP Advances 4 (7), 077113, 2014 | 33 | 2014 |
Dynamic tuning of enhanced intrinsic circular dichroism in plasmonic stereo-metamolecule array with surface lattice resonance SD Liu, JY Liu, Z Cao, JL Fan, D Lei Nanophotonics 9 (10), 3419-3434, 2020 | 31 | 2020 |