Study about photoinduction-based technology for trapping small brown planthopper
To provide a theory to guide the selection of the illumination parameters of light emitting diode (LED)-based light sources used for trapping Laodelphax striatellus, we used LED light sources and devices built in-house to detect L. striatellus phototactic behavior. Through phototaxis screening exper...
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Format: | Article |
Language: | English |
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Frontiers Media S.A.
2022-08-01
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Series: | Frontiers in Plant Science |
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Online Access: | https://www.frontiersin.org/articles/10.3389/fpls.2022.905001/full |
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author | Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Zhentao Sheng Zhentao Sheng Zhentao Sheng Zhentao Sheng Yiming Liu Yiming Liu Yiming Liu Yiming Liu Ke Xu Ke Xu Ke Xu Ke Xu Jiahui Wang Jiahui Wang Jiahui Wang Jiahui Wang Weixing Cao Weixing Cao Weixing Cao Weixing Cao Yongchao Tian Yongchao Tian Yongchao Tian Yongchao Tian Jun Ni Jun Ni Jun Ni Jun Ni |
author_facet | Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Zhentao Sheng Zhentao Sheng Zhentao Sheng Zhentao Sheng Yiming Liu Yiming Liu Yiming Liu Yiming Liu Ke Xu Ke Xu Ke Xu Ke Xu Jiahui Wang Jiahui Wang Jiahui Wang Jiahui Wang Weixing Cao Weixing Cao Weixing Cao Weixing Cao Yongchao Tian Yongchao Tian Yongchao Tian Yongchao Tian Jun Ni Jun Ni Jun Ni Jun Ni |
author_sort | Shaoqi Zhan |
collection | DOAJ |
description | To provide a theory to guide the selection of the illumination parameters of light emitting diode (LED)-based light sources used for trapping Laodelphax striatellus, we used LED light sources and devices built in-house to detect L. striatellus phototactic behavior. Through phototaxis screening experiments of different light sources and the comparative experimental method, we analyzed the response patterns of L. striatellus to wavelength, light intensity, layout, flash frequency of monochromatic light sources, as well as combined color light sources, and discussed the mechanisms of the phototactic behavior of L. striatellus under different light sources. The results of the monochromatic light experiment showed that the trapping rate of the L. striatellus to the linear blue light source of 460 nm was the highest and was also significantly affected by the light intensity. The results of the experiments with the combined color light sources showed that compared with the linear 460 nm blue light source, the trapping rate of the L. striatellus was significantly improved by the polychromatic light, and the blue–green light led to the best improvement, reaching 1.5 times that of the trapping rate in the case of monochromatic light sources. The wavelength composition, light intensity, shape, and flash frequency of the light source used in this study can provide a theoretical basis for the development of LED-based light traps specifically for L. striatellus. |
first_indexed | 2024-04-11T09:41:54Z |
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institution | Directory Open Access Journal |
issn | 1664-462X |
language | English |
last_indexed | 2024-04-11T09:41:54Z |
publishDate | 2022-08-01 |
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series | Frontiers in Plant Science |
spelling | doaj.art-3ec902b3dcd043e89d66e143a6fc742d2022-12-22T04:31:11ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2022-08-011310.3389/fpls.2022.905001905001Study about photoinduction-based technology for trapping small brown planthopperShaoqi Zhan0Shaoqi Zhan1Shaoqi Zhan2Shaoqi Zhan3Zhentao Sheng4Zhentao Sheng5Zhentao Sheng6Zhentao Sheng7Yiming Liu8Yiming Liu9Yiming Liu10Yiming Liu11Ke Xu12Ke Xu13Ke Xu14Ke Xu15Jiahui Wang16Jiahui Wang17Jiahui Wang18Jiahui Wang19Weixing Cao20Weixing Cao21Weixing Cao22Weixing Cao23Yongchao Tian24Yongchao Tian25Yongchao Tian26Yongchao Tian27Jun Ni28Jun Ni29Jun Ni30Jun Ni31College of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaCollege of Agriculture, Nanjing Agricultural University, Nanjing, ChinaNational Engineering and Technology Center for Information Agriculture, Nanjing, ChinaEngineering Research Center of Smart Agriculture, Ministry of Education, Nanjing, ChinaCollaborative Innovation Center for Modern Crop Production co-sponsored by Province and Ministry, Nanjing, ChinaTo provide a theory to guide the selection of the illumination parameters of light emitting diode (LED)-based light sources used for trapping Laodelphax striatellus, we used LED light sources and devices built in-house to detect L. striatellus phototactic behavior. Through phototaxis screening experiments of different light sources and the comparative experimental method, we analyzed the response patterns of L. striatellus to wavelength, light intensity, layout, flash frequency of monochromatic light sources, as well as combined color light sources, and discussed the mechanisms of the phototactic behavior of L. striatellus under different light sources. The results of the monochromatic light experiment showed that the trapping rate of the L. striatellus to the linear blue light source of 460 nm was the highest and was also significantly affected by the light intensity. The results of the experiments with the combined color light sources showed that compared with the linear 460 nm blue light source, the trapping rate of the L. striatellus was significantly improved by the polychromatic light, and the blue–green light led to the best improvement, reaching 1.5 times that of the trapping rate in the case of monochromatic light sources. The wavelength composition, light intensity, shape, and flash frequency of the light source used in this study can provide a theoretical basis for the development of LED-based light traps specifically for L. striatellus.https://www.frontiersin.org/articles/10.3389/fpls.2022.905001/fullrice planthopperlight trappinglight spectrumlight intensityshapephototaxis |
spellingShingle | Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Shaoqi Zhan Zhentao Sheng Zhentao Sheng Zhentao Sheng Zhentao Sheng Yiming Liu Yiming Liu Yiming Liu Yiming Liu Ke Xu Ke Xu Ke Xu Ke Xu Jiahui Wang Jiahui Wang Jiahui Wang Jiahui Wang Weixing Cao Weixing Cao Weixing Cao Weixing Cao Yongchao Tian Yongchao Tian Yongchao Tian Yongchao Tian Jun Ni Jun Ni Jun Ni Jun Ni Study about photoinduction-based technology for trapping small brown planthopper Frontiers in Plant Science rice planthopper light trapping light spectrum light intensity shape phototaxis |
title | Study about photoinduction-based technology for trapping small brown planthopper |
title_full | Study about photoinduction-based technology for trapping small brown planthopper |
title_fullStr | Study about photoinduction-based technology for trapping small brown planthopper |
title_full_unstemmed | Study about photoinduction-based technology for trapping small brown planthopper |
title_short | Study about photoinduction-based technology for trapping small brown planthopper |
title_sort | study about photoinduction based technology for trapping small brown planthopper |
topic | rice planthopper light trapping light spectrum light intensity shape phototaxis |
url | https://www.frontiersin.org/articles/10.3389/fpls.2022.905001/full |
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