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Journal articles on the topic 'Light trapping'

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1

Palmer, D. Jason. "Trapping the light fantastic." Materials Today 11, no. 1-2 (2008): 13. http://dx.doi.org/10.1016/s1369-7021(07)70344-9.

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2

Stone, A. Douglas. "Trapping the light fantastic." Nature 499, no. 7457 (2013): 159–60. http://dx.doi.org/10.1038/499159a.

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3

Prajapati, Ashish, Yuval Nissan, Tamir Gabay, and Gil Shalev. "Light Trapping with Silicon Light Funnel Arrays." Materials 11, no. 3 (2018): 445. http://dx.doi.org/10.3390/ma11030445.

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4

Sun, Xiaoxiang, Jinglin Song, Weijun Tan, et al. "Finite-Difference Time-Domain Simulation of Double-Ridge Superimposed Structures for Optimizing Light-Trapping Characteristics in Ternary Organic Solar Cells." Coatings 14, no. 12 (2024): 1583. https://doi.org/10.3390/coatings14121583.

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The double-ridge superimposed structures (DRSSs), formed by the superposition of a nano-ridged textured ZnO layer and a ternary organic active layer (PTB7:PC70BM:PC60BM) with self-assembled nano-ridged (SANR) structures, have been preliminarily examined experimentally for its positive effects in light-trapping for organic solar cells (OSCs). To obtain DRSSs with higher-performance light-trapping effects and enhance the light absorption of OSCs, the present work carried out prior theoretical simulations of the light-trapping characteristics of the DRSS using the finite-difference time-domain (F
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5

Shi, Yanpeng, Xiaodong Wang, and Fuhua Yang. "Disorder Improves Light Absorption in Thin Film Silicon Solar Cells with Hybrid Light Trapping Structure." International Journal of Optics 2016 (2016): 1–8. http://dx.doi.org/10.1155/2016/9371608.

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We present a systematic simulation study on the impact of disorder in thin film silicon solar cells with hybrid light trapping structure. For the periodical structures introducing certain randomness in some parameters, the nanophotonic light trapping effect is demonstrated to be superior to their periodic counterparts. The nanophotonic light trapping effect can be associated with the increased modes induced by the structural disorders. Our study is a systematic proof that certain disorder is conceptually an advantage for nanophotonic light trapping concepts in thin film solar cells. The result
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6

Bai, Minyu, Huan Liu, Fei Xie, Jijie Zhao, Weiguo Liu, and Huikai Xie. "Light trapping enhancement via structure design." International Journal of Modern Physics B 34, no. 06 (2020): 2050040. http://dx.doi.org/10.1142/s021797922050040x.

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Light trapping is of great importance in many applications including photodetectors and solar cells. Silicon-based structures and hybrid devices were designed and studied to reduce reflection, thus enhance light trapping. The typical pillar array was analyzed concerning the pillar radius and distance between pillars first. The result showed that light reflection could be reduced from the range of 0.35–0.45 to the range of 0–0.3 with wavelength from 400 to 700 nm. What should be noted is that optimal size for light trapping changed when wavelength varied. Furthermore, hybrid structure was desig
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7

Bychenkov, V. Yu, and V. F. Kovalev. "Self-Trapping of Extreme Light." Radiophysics and Quantum Electronics 63, no. 9-10 (2021): 742–55. http://dx.doi.org/10.1007/s11141-021-10093-9.

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8

Wang, Ken Xingze, Zongfu Yu, Victor Liu, Aaswath Raman, Yi Cui, and Shanhui Fan. "Light trapping in photonic crystals." Energy & Environmental Science 7, no. 8 (2014): 2725. http://dx.doi.org/10.1039/c4ee00839a.

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9

Elder, Bill. "Attracting Insects by Light Trapping." Ballarat Naturalist 20, no. 10 (2020): 4–5. http://dx.doi.org/10.5962/p.385534.

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10

Park, Junghyun, Kyoung-Youm Kim, Il-Min Lee, Hyunmin Na, Seung-Yeol Lee, and Byoungho Lee. "Trapping light in plasmonic waveguides." Optics Express 18, no. 2 (2010): 598. http://dx.doi.org/10.1364/oe.18.000598.

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11

Koshelev, Kirill, and Yuri Kivshar. "Light trapping gets a boost." Nature 574, no. 7779 (2019): 491–92. http://dx.doi.org/10.1038/d41586-019-03143-w.

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12

Allan, D. J. "Analysis of light-trapping data." New Zealand Entomologist 11, no. 1 (1988): 86. http://dx.doi.org/10.1080/00779962.1988.9722549.

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13

Ai, Bin, Panpan Gu, Zengyao Wang, Helmuth Möhwald, Limin Wang, and Gang Zhang. "Light Trapping in Plasmonic Nanovessels." Advanced Optical Materials 5, no. 5 (2017): 1600980. http://dx.doi.org/10.1002/adom.201600980.

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14

Tseng, Wei-Hsiung, Diana Juan, Wei-Cheng Hsiao, Cheng-Han Chan, Hsin-Yi Ma, and Hsiao-Yi Lee. "Design of a Secondary Freeform Lens of UV LED Mosquito-Trapping Lamp for Enhancing Trapping Efficiency." Crystals 8, no. 9 (2018): 335. http://dx.doi.org/10.3390/cryst8090335.

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In this study, our proposed ultraviolet light-emitting diode (UV LED) mosquito-trapping lamp is designed to control diseases brought by insects such as mosquitoes. In order to enable the device to efficiently catch mosquitoes in a wider area, a secondary freeform lens (SFL) is designed for UV LED. The lens is mounted on a 3 W UV LED light bar as a mosquito-trapping lamp of the new UV LED light bar module to achieve axially symmetric light intensity distribution. The special SFL is used to enhance the trapping capabilities of the mosquito-trapping lamp. The results show that when the secondary
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15

Jain, Chhavi, Avi Braun, Julian Gargiulo, et al. "Hollow Core Light Cage: Trapping Light Behind Bars." ACS Photonics 6, no. 3 (2018): 649–58. http://dx.doi.org/10.1021/acsphotonics.8b01428.

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16

Yang, Haibo, Jing Lu, Pinhong Zhu, et al. "Blue Light Attracts More Spodoptera frugiperda Moths and Promotes Their Flight Speed." Insects 15, no. 2 (2024): 129. http://dx.doi.org/10.3390/insects15020129.

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Light traps are a useful method for monitoring and controlling the important migratory pest, the fall armyworm, Spodoptera frugiperda. Studies have shown that S. frugiperda is sensitive to blue, green, or ultraviolet (UV) light, but the conclusions are inconsistent. Furthermore, conventional black light traps are less effective for trapping S. frugiperda. To improve the trapping efficiency of this pest, it is crucial to determine the specific wavelength to which S. frugiperda is sensitive and measure its flight capability under that wavelength. This study investigated the effects of light wave
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17

Yu, Ki Jun, Li Gao, Jae Suk Park, et al. "Light Trapping: Light Trapping in Ultrathin Monocrystalline Silicon Solar Cells (Adv. Energy Mater. 11/2013)." Advanced Energy Materials 3, no. 11 (2013): 1528. http://dx.doi.org/10.1002/aenm.201370046.

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18

Wang, Yong, Yajun Chang, Sai Zhang, Xingchuan Jiang, Bin Yang, and Guirong Wang. "Comparison of Phototactic Behavior between Two Migratory Pests, Helicoverpa armigera and Spodoptera frugiperda." Insects 13, no. 10 (2022): 917. http://dx.doi.org/10.3390/insects13100917.

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The fall armyworm, Spodoptera frugiperda (Lepidoptera: Noctuidae), is an important migratory pest, causing great losses to agricultural production. Light trapping is a pesticide-free method for pest control and is influenced by many factors, especially wavelength and light intensity. In this study, a series of phototactic behavioral assays were carried out and the physical parameters were included to identify phototactic responses of S. frugiperda, with Helicoverpa armigera as control. It was found that S. frugiperda showed the highest average phototactic rate to blue light among five differen
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19

Sugiyama, Takashi, Kousuke Chonan, and Mika Kambe. "Enhanced Light Trapping of Thin Film Si Solar Cell in Glass-Laminated Module." MRS Proceedings 1426 (2012): 99–104. http://dx.doi.org/10.1557/opl.2012.809.

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ABSTRACTIn efforts to achieve higher efficiency of thin film Si solar cell, light trapping is one of the most important strategies in designing the cell structure. From the past studies, it is well known that TCO with a higher haze can exhibit better light trapping characteristics for a superstrate type thin film Si solar cell, while such TCO could give lower Voc and FF values caused by steep valleys in the texture of TCO. Furthermore, TCO with too high haze in a longer wavelength region could make back reflectance at the Ag rear electrode/reflector lower due to plasmonic effect on rough surfa
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20

Liu, Wenfu, Yinling Wang, Xiaolei Guo, Jun Song, Xiao Wang, and Yasha Yi. "Light Trapping in Single Elliptical Silicon Nanowires." Nanomaterials 10, no. 11 (2020): 2121. http://dx.doi.org/10.3390/nano10112121.

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Light trapping in single nanowires (NWs) is of vital importance for photovoltaic applications. However, circular NWs (CNWs) can limit their light-trapping ability due to high geometrical symmetry. In this work, we present a detailed study of light trapping in single silicon NWs with an elliptical cross-section (ENWs). We demonstrate that the ENWs exhibit significantly enhanced light trapping compared with the CNWs, which can be ascribed to the symmetry-broken structure that can orthogonalize the direction of light illumination and the leaky mode resonances (LMRs). That is, the elliptical cross
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21

Yi, Yasha, Wei Guo, and Yueheng Peng. "Enhancement of light trapping for thin film solar cells." MRS Advances 4, no. 13 (2018): 743–48. http://dx.doi.org/10.1557/adv.2018.637.

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ABSTRACTLight trapping is one of the key challenges for next generation thin film solar cells. In this work, we have identified the distinct light trapping effects for short and long wavelength solar spectrum range, by investigating lighting trapping structures on both sides of Si thin film solar cells. The sub-wavelength photonic front surface by wet etching and multi-layer photonic crystal reflector on the bottom surface are studied in detail for its solar energy absorption characteristics. Our study reveals the drastic difference of the light trapping effects within the solar spectrum wavel
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22

R, Sukanya, and T. Sivakumar. "Enhanced Light Trapping From Nanoparticle Arrays." International Journal of Thin Films Science and Technology 8, no. 1 (2019): 5–8. http://dx.doi.org/10.18576/ijtfst/080102.

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23

Zhang, Xiwen, and Sajeev John. "Photonic crystal light trapping for photocatalysis." Optics Express 29, no. 14 (2021): 22376. http://dx.doi.org/10.1364/oe.427218.

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24

Itämies, Juhani. "Review: Light trapping and the Moon." Entomologica Fennica 20, no. 4 (2009): 287–88. http://dx.doi.org/10.33338/ef.84492.

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25

Davies, P. A. "Light-trapping lenses for solar cells." Applied Optics 31, no. 28 (1992): 6021. http://dx.doi.org/10.1364/ao.31.006021.

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26

McIntosh, Keith R., Thomas G. Allen, Simeon C. Baker-Finch, and Malcolm D. Abbott. "Light Trapping in Isotextured Silicon Wafers." IEEE Journal of Photovoltaics 7, no. 1 (2017): 110–17. http://dx.doi.org/10.1109/jphotov.2016.2621347.

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27

Du, Qing Guo, Guansheng Shen, and Sajeev John. "Light-trapping in perovskite solar cells." AIP Advances 6, no. 6 (2016): 065002. http://dx.doi.org/10.1063/1.4953336.

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28

Luo, Hao, Jingyi Tian, Qiang Li, et al. "Flat photonics for broadband light-trapping." Applied Physics Letters 117, no. 24 (2020): 241105. http://dx.doi.org/10.1063/5.0033312.

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29

Mokkapati, S., and K. R. Catchpole. "Nanophotonic light trapping in solar cells." Journal of Applied Physics 112, no. 10 (2012): 101101. http://dx.doi.org/10.1063/1.4747795.

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30

Sheng, C., H. Liu, Y. Wang, S. N. Zhu, and D. A. Genov. "Trapping light by mimicking gravitational lensing." Nature Photonics 7, no. 11 (2013): 902–6. http://dx.doi.org/10.1038/nphoton.2013.247.

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31

Khardikov, Vyacheslav V., Ekaterina O. Iarko, and Sergey L. Prosvirnin. "Trapping of light by metal arrays." Journal of Optics 12, no. 4 (2010): 045102. http://dx.doi.org/10.1088/2040-8978/12/4/045102.

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32

Campbell, P. "Light trapping in textured solar cells." Solar Energy Materials 21, no. 2-3 (1990): 165–72. http://dx.doi.org/10.1016/0165-1633(90)90051-2.

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33

Picozzi, Antonio. "Self-trapping of speckled light beams." Nature Photonics 2, no. 6 (2008): 334–35. http://dx.doi.org/10.1038/nphoton.2008.89.

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34

Mitchell, Matthew, and Mordechai Segev. "Self-trapping of incoherent white light." Nature 387, no. 6636 (1997): 880–83. http://dx.doi.org/10.1038/43136.

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35

Mitchell, Zachary, Gregory Simon, and Xueying Zhao. "Trapping light rays aperiodically with mirrors." Involve, a Journal of Mathematics 5, no. 1 (2012): 9–14. http://dx.doi.org/10.2140/involve.2012.5.9.

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36

Manai, L., B. Dridi Rezgui, A. Bou, et al. "Enhanced light trapping using plasmonic nanoparticles." Journal of Physics: Conference Series 596 (April 8, 2015): 012002. http://dx.doi.org/10.1088/1742-6596/596/1/012002.

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37

Barugkin, Chog, Yimao Wan, Daniel Macdonald, and Kylie R. Catchpole. "Evaluating Plasmonic Light Trapping With Photoluminescence." IEEE Journal of Photovoltaics 3, no. 4 (2013): 1292–97. http://dx.doi.org/10.1109/jphotov.2013.2273570.

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38

Kador, Lothar. "Aligning and Trapping Molecules with Light." Angewandte Chemie International Edition in English 34, no. 21 (1995): 2365–66. http://dx.doi.org/10.1002/anie.199523651.

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39

Niggemann, Michael, Moritz Riede, Andreas Gombert, and Karl Leo. "Light trapping in organic solar cells." physica status solidi (a) 205, no. 12 (2008): 2862–74. http://dx.doi.org/10.1002/pssa.200880461.

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40

Nowinszky, L., Gy Szeidovitz, and J. Puskás. "Light Trapping of Insects During Earthquakes." Acta Geodaetica et Geophysica Hungarica 33, no. 2-4 (1998): 377–89. http://dx.doi.org/10.1007/bf03325547.

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41

Li, Chang, Mingxin Chen, Fen Li, et al. "Simulation of Light-Trapping Characteristics of Self-Assembled Nano-Ridges in Ternary Organic Film." Coatings 12, no. 9 (2022): 1340. http://dx.doi.org/10.3390/coatings12091340.

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The presence of self-assembled nano-ridged (SANR) structures in PTB7-Th:PC70BM:PC60BM ternary organic blend film with the specific component ratio was experimentally clarified, and the light-trapping effect of the SANR structures was demonstrated. On this basis, the light-trapping characteristics of the PTB7-Th:PC70BM:PC60BM ternary blend film with the SANR structures were investigated by using the finite-difference time-domain (FDTD) algorithm. The results showed that the SANR structures have a light-trapping effect, which can effectively reduce the transmittance and reflectance of the incide
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42

Zhu, Baohua, Le Chen, Song Ye, and Wei Luo. "The Light-Trapping Character of Pit Arrays on the Surface of Solar Cells." Photonics 10, no. 7 (2023): 855. http://dx.doi.org/10.3390/photonics10070855.

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Surfaces with light-trapping structures are widely used in solar cells to enhance light capturing and to transform efficiency. The study of light-trapping character is important for light-trapping structures in solar cells. In the present study, the light-trapping character for the regular hemisphere pit arrays (RHPAs) in solar cells was intensively investigated in terms of reducing light reflection, suppressing light escape, and increasing the length of the optical path. Results show that the RHPAs can decrease surface reflectivity by ~54% compared with the plane structure, and can reflect ~3
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43

Mukti, Rokeya Jahan, Md Rabiul Hossain, Ariful Islam, Saad Mekhilef, and Ben Horan. "Increased Absorption with Al Nanoparticle at Front Surface of Thin Film Silicon Solar Cell." Energies 12, no. 13 (2019): 2602. http://dx.doi.org/10.3390/en12132602.

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This article presents an effective structural design arrangement for light trapping in the front surface of a thin film silicon solar cell (TFSC). Front surface light trapping rate is significantly enhanced here by incorporating the Aluminium (Al) nanoparticle arrays into silicon nitride anti-reflection layer. The light trapping capability of these arrays is extensively analyzed via Finite Difference Time Domain (FDTD) method considering the wavelength ranging from 400 to 1100 nm. The outcome indicates that the structural parameters associated with the aluminium nanoparticle arrays like partic
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44

BECKERS, T., K. BITTKAU, and R. CARIUS. "INVESTIGATION OF TRAPPED LIGHT IN THIN-FILM SILICON SOLAR CELLS." Journal of Nonlinear Optical Physics & Materials 19, no. 04 (2010): 645–51. http://dx.doi.org/10.1142/s0218863510005534.

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In thin-film silicon solar cell devices randomly textured interfaces are used to achieve light scattering sufficient for efficient light trapping. We use near-field scanning optical microscopy (NSOM) for visualizing wave guiding mechanisms experimentally by measuring the evanescent modes. Their impact on the light trapping efficiency and the link to topographic structures will be addressed.
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45

SATO, TOSHIKAZU. "Precision trapping operation of a fine object by a light trapping method." Bulletin of the Japan Institute of Metals 31, no. 10 (1992): 919–21. http://dx.doi.org/10.2320/materia1962.31.919.

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46

El. Soliman, Sayed, Israa Abood, Naglaa Abdel All, and Chii-Chang Chen. "Topological Rainbow Trapping with Expanded Bandwidth in Valley Photonic Crystals." Photonics 12, no. 5 (2025): 487. https://doi.org/10.3390/photonics12050487.

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We introduce a novel approach to achieve broadband rainbow trapping in a 2D photonic crystal (PC) platform. By exploiting the concept of valley PCs, we engineer a structure that supports robust topological edge states. A carefully designed rotational angle gradient along the edge state path induces frequency-dependent light localization, forming a topological rainbow with a significantly expanded bandwidth. This phenomenon of topological rainbow trapping is attributed to the interplay between valley-dependent topological edge states and the engineered rotational angle gradient. To further enha
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47

Uchiyama, K., J. Fick, S. Huant, K. Uchida, M. Naruse, and H. Hori. "Optical trapping of photochromic microcrystals by a dual fiber tweezers." Applied Physics Letters 121, no. 11 (2022): 111103. http://dx.doi.org/10.1063/5.0101484.

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Upon light irradiation, photochromic materials exhibit drastic changes in absorbance in addition to molecular and mechanical changes. In this study, we demonstrated optical trapping of photochromic microcrystals in a double fiber optical tweezers system combined with two external lights for photoisomerization and observed changes in the trapping force by photoisomerization. In situ photoisomerizations of the single crystal trapped in the system were performed thrice revealing a reversible change in the trapping force. The trapping stiffness for the colored crystal was one-third of that for the
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48

Anguita, José V., Muhammad Ahmad, Sajad Haq, Jeremy Allam, and S. Ravi P. Silva. "Ultra-broadband light trapping using nanotextured decoupled graphene multilayers." Science Advances 2, no. 2 (2016): e1501238. http://dx.doi.org/10.1126/sciadv.1501238.

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The ability to engineer a thin two-dimensional surface for light trapping across an ultra-broad spectral range is central for an increasing number of applications including energy, optoelectronics, and spectroscopy. Although broadband light trapping has been obtained in tall structures of carbon nanotubes with millimeter-tall dimensions, obtaining such broadband light–trapping behavior from nanometer-scale absorbers remains elusive. We report a method for trapping the optical field coincident with few-layer decoupled graphene using field localization within a disordered distribution of subwave
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49

Cohnstaedt, Lee W., Jonathon I. Gillen, and Leonard E. Munstermann. "Light-Emitting Diode Technology Improves Insect Trapping." Journal of the American Mosquito Control Association 24, no. 2 (2008): 331–34. http://dx.doi.org/10.2987/5619.1.

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50

Boccard, Mathieu, Corsin Battaglia, Franz-Josef Haug, Matthieu Despeisse, and Christophe Ballif. "Light trapping in solar cells: Analytical modeling." Applied Physics Letters 101, no. 15 (2012): 151105. http://dx.doi.org/10.1063/1.4758295.

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