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植物脅迫測(cè)量套件

簡(jiǎn)要描述:Y(II)或ΔF/Fm’ 或 (Fm’ – Fs )/Fm’) 是經(jīng)受時(shí)間考驗(yàn)的光適應(yīng)測(cè)量參數(shù),比Fv/Fm對(duì)更多類(lèi)型的植物脅迫更加敏感。已有的大量證據(jù)表明Fv/Fm對(duì)許多種植物脅迫和健康植物的光系統(tǒng)II的測(cè)量十分出色,而Y(II)或光量子產(chǎn)額則可測(cè)量實(shí)際光照下光適應(yīng)環(huán)境和生理狀況的光系統(tǒng)II的效率。

  • 產(chǎn)品型號(hào):PSK
  • 廠商性質(zhì):生產(chǎn)廠家
  • 更新時(shí)間:2024-10-15
  • 訪  問(wèn)  量:919

詳細(xì)介紹

  應(yīng)用
 
  Y(II)或ΔF/Fm’ 或 (Fm’ – Fs )/Fm’) 是經(jīng)受時(shí)間考驗(yàn)的光適應(yīng)測(cè)量參數(shù),比Fv/Fm對(duì)更多類(lèi)型的植物脅迫更加敏感。已有的大量證據(jù)表明Fv/Fm對(duì)許多種植物脅迫和健康植物的光系統(tǒng)II的測(cè)量十分出色,而Y(II)或光量子產(chǎn)額則可測(cè)量實(shí)際光照下光適應(yīng)環(huán)境和生理狀況的光系統(tǒng)II的效率。
 
1.jpg
        原理
 
  采用調(diào)制飽和脈沖原理,測(cè)量植物的葉綠素?zé)晒?,測(cè)量參數(shù)包括植物的光量子產(chǎn)額Y(II)及相對(duì)電子傳遞速率ETR,最大光化學(xué)效率Fv/Fm,同時(shí)還可測(cè)量PAR、葉溫、相對(duì)濕度和葉片吸光率等環(huán)境參數(shù)。
 
  特點(diǎn)
 
  葉片吸光率測(cè)量:提供葉片吸收測(cè)量及隨環(huán)境變化導(dǎo)致的葉片吸收變化。根據(jù)Eichelman (2004) 葉片吸收在健康植物的變化范圍在0.7~0.9 之間。因此,為獲得準(zhǔn)確的ETR或“J”,Y(II)測(cè)量?jī)x提供了一個(gè)可靠的測(cè)量方法,
 
  Fv/Fm測(cè)量單元:用于暗適應(yīng)測(cè)量。
 
1.jpg
  先進(jìn)的PAR葉夾:采用底部葉夾打開(kāi)裝置,防止測(cè)量時(shí)誤操作打開(kāi)葉夾。對(duì)傳感器進(jìn)行余弦校正,確保葉片相對(duì)測(cè)量光的角度不變。
 
1.jpg
  Fm’校正:對(duì)于具有高光照強(qiáng)度歷史的植物,*關(guān)閉光反應(yīng)中心是一個(gè)問(wèn)題,Y(II)測(cè)量?jī)x使用Loriaux &Genty 2013的方法進(jìn)行Fm’ 校正,確??梢詼y(cè)得準(zhǔn)確的Fm’ 。
 
  自動(dòng)調(diào)制光設(shè)定:快速準(zhǔn)確自動(dòng)的調(diào)整合適的調(diào)制光強(qiáng),避免人工操作的誤差。
 
  先進(jìn)算法避免飽和脈沖NPQ:采用25ms內(nèi)8點(diǎn)的平均值確定Fm、Fm’、Fo、Fs,消除飽和脈沖NPQ的影響和電子噪音。
 
  更精確的葉溫測(cè)量:采用非接觸式紅外測(cè)量,測(cè)量精度可達(dá)±0.5℃。
 
  直接測(cè)量相對(duì)濕度:含有測(cè)量氣體交換使用的固態(tài)傳感器,可測(cè)量相對(duì)濕度。
 
  降低葉片遮擋的設(shè)計(jì):傾斜的角度減少對(duì)葉片的遮擋,可以測(cè)量擬南芥等小葉。
 
  系統(tǒng)組成
 
1.jpg
標(biāo)配:
  Y(II)光量子產(chǎn)額測(cè)量?jī)x,F(xiàn)v/Fm測(cè)量?jī)x及10個(gè)暗適應(yīng)葉夾,2個(gè)電池,2個(gè)充電器,一個(gè)便攜箱,文件U盤(pán)。
 
  技術(shù)指標(biāo)
 
  測(cè)量參數(shù)
 
  Y(II)或ΔF/Fm‘、ETR、PAR、Tleaf、相對(duì)濕度、Fms或Fm’、Fs、α(葉片吸收率)、FV/FM、FV/FO,F(xiàn)O, FM, FV。
 
  監(jiān)測(cè)模式:允許長(zhǎng)時(shí)間監(jiān)測(cè)
 
  技術(shù)參數(shù)
 
  Y(II): 光適應(yīng)測(cè)量, 穩(wěn)態(tài)光合作用下的環(huán)境光
 
  光源
 
  飽和脈沖: LED白光源,使用PAR葉夾時(shí)可達(dá)7000μmols
 
  調(diào)制光:紅光,LED 660nm,具有690nm窄通過(guò)濾器。
 
  光化光源:環(huán)境光
 
  檢測(cè)方法:脈沖調(diào)制法
 
  PAR:測(cè)量400-700nm,余弦校正 ±2umols
 
  Fv/Fm:暗適應(yīng)測(cè)量
 
  光源:LED紅光飽和光閃,可達(dá)6000umols;
 
  調(diào)制光:660nmLED 紅光,690nm濾波器
 
  調(diào)制光可以根據(jù)實(shí)際測(cè)量自動(dòng)調(diào)節(jié)到合適的強(qiáng)度,減少手動(dòng)調(diào)節(jié)誤差,
 
  相對(duì)濕度:0%~100%,±2%。
 
  檢測(cè)器&過(guò)濾器:具有700~750nm帶通過(guò)濾的PIN光電二極管
 
  可選配三腳架。
 
  顯示:132 X 30 pixel 液晶顯示屏
 
  取樣速率:1~10000點(diǎn)/秒自動(dòng)切換。
 
  測(cè)量時(shí)間:最短3s或也可設(shè)置長(zhǎng)期監(jiān)測(cè)模式
 
  存儲(chǔ)空間:2GB
 
  輸出:USB下載數(shù)據(jù),用Excel查看,無(wú)需安裝其他專(zhuān)用軟件
 
  供電:USB鋰離子電池(普通充電寶),可用8小時(shí)
 
  尺寸:便攜箱尺寸為14”x 11”x 6”,儀器為9’’長(zhǎng)
 
  質(zhì)量:Y(II) 測(cè)量?jī)x0.45 kg
 
  Fv/Fm測(cè)量?jī)x0.36 kg.
 
  加便攜箱和附件總重1.95 kg.
 
  工作溫度:0℃ ~ 50℃
 
  產(chǎn)地
 
  美國(guó)
 
  文獻(xiàn)
 
  Adams & Demming-Adams 2004 – Chlorophyll Fluorescence as a tool to Monitor Plant Response to the Environment. William W. Adams III and Barbara Demmig-Adams, From Chapter 22, “Chlorophyll a Fluorescence a Signature of Photosynthesis”, edited by George Papaqeorgiou and Govindjee, published by Springer 2004, PO Box 17, 3300 AA Dordrecht, The Netherlands, pages 598 -599
 
  Adams WW III, Demmig-Adams B. (1994) Carotenoid composition and down regulation of Photosystem II in three conifer species during the winter. Physiol Plant 92: 451-458
 
  Ball MC. (1994) The role of photoinhibition during seedling establishment at low temperatures. In: Baker NR. And Bowyer JR. (eds) Photoinhibition of Photosynthesis. From Molecular Mechanisms to the Field, pp365-3376 Bios Scientific Publishers, Oxford
 
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  Baker N.R, Rosenquist E. (2004) Applications of chlorophyll fluorescence can improve crop production strategies: an examination of future possibilities, Bukhov & Carpentier 2004 – Effects of Water Stress on the Photosynthetic Efficiency of Plants, Bukhov NG., & Robert Carpentier, From Chapter 24, “Chlorophyll a Fluorescence a Signature of Photosynthesis”, edited by George
 
  Papaqeorgiou and Govindjee, published by Springer 2004, PO Box 17, 3300 AA Dordrecht, The Netherlands, page 627-628 Burke J. (2007) Evaluation of Source Leaf Responses to Water-Deficit Stresses in Cotton Using a Novel Stress Bioassay, Plant Physiology, Jan. 2007, Vol 143, pp108-121
 
  Burke J., Franks C.D. Burow G., Xin Z. (2010) Selection system for the Stay-Green Drought Tolerance Trait in Sorghum Germplasm, Agronomy Journal 102:1118-1122 May 2010
 
  Cavender-Bares J. & Fakhri A. Bazzaz 2004 – “From Leaves to Ecosystem: Using Chlorophyll Fluorescence to Assess Photosynthesis and Plant Function in Ecological Studies”. Jeannine Cavender Bares, Fakhri A. Bazzaz, From Chapter 29, “Chlorophyll a Fluorescence a Signature of Photosynthesis”, edited by George Papaqeorgiou and Govindjee, published by Springer 2004, PO Box 17, 3300 AA Dordrecht, The Netherlands, page 746-747 ETR Drought stress and npq
 
  Cazzaniga S, Osto L.D., Kong S-G., Wada M., Bassi R., (2013) “Interaction between avoidance of photon absorption, excess energy dissipation and zeaxanthin synthesis against photo oxidative stress in Arabidopsis”, The Plant Journal, Volume 76, Issue 4, pages568–579, November 2013 DOI: 10.1111/tpj.12314
 
  Cheng L., Fuchigami L., Breen P., (2001) “The relationship between photosystem II efficiency and quantum yield for CO2 assimilation is not affected by nitrogen content in apple leaves.”
 
  Adams WW III, Demmig-Adams B., Vernhoeven AS., and Barker DH., (1995) Photoinhibition during winter stress – Involvement of sustained xanthophyll cycle-dependent energy-dissipation. Aust J. Plant Physiol 22: 261-276 Journal of Experimental Botany, 55(403):1607-1621
 
  Journal of Experimental Botany, 52(362):1865-1872Crafts-Brandner S. J., Law R.D. (2000) Effects of heat stress on the inhibition and recovery of ribulase-1, 5- biphsphate carboxylase/ oxygenase activation state. Planta (2000) 212: 67-74
 
  all’Osto L, Cazzaniga S, Wada M, Bassi R. (2014) On the origin of a slowly reversible fluorescence decay component in the Arabidopsis npq4 mutant. Phil. Trans. R. Soc. B 369: 20130221.htt://dx.doi.org/10.1098/rstb.2013.0221
 
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  Eichelman H., Oja V., Rasulov B., Padu E., Bichele I., Pettai H., Niinemets O., Laisk A. (2004) Development of Leaf Photosynthetic Parameters in Betual pendula Roth Leaves: Correlation with Photosystem I Density, Plant Biology 6 (2004):307-318
 
  Eyodogan F., Oz M. T. (2007) Effect of salinity on antioxidant responses of chickpea seedlings. Acta Physiol Plant (2007) 29:485-493
 
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  Flexas 2000 – “Steady-State and Maximum Chlorophyll Fluorescence Responses to Water Stress In Grape Vine Leaves: A New Remote Sensing System”, J. Flexas, MJ Briantais, Z Cerovic, H Medrano, I Moya, Remote Sensing Environment 73:283-270 Physiologia Plantarum, Volume 114, Number 2, February 2002 , pp. 231-240(10)
 
  Gonias E. D. Oosterhuis D.M., Bibi A.C. & Brown R.S. (2003) YIELD, GROWTH AND PHYSIOLOGY OF TRIMAX TM TREATED COTTON, Summaries of Arkansas Cotton Research 2003
 
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  Photosynthesis in the water-stressed C grass is mainly limited by stomata with both rapidly and slowly imposed water deficits. Flexas (2002) Steady-state chlorophyll fluorescence (Fs) measurements as a tool to follow variations of net CO2 assimilation and stomatal conductance during water-stress in C plants Flexas J., Escalona J. M., Evain S., Gulías J., Moya I., Charles Barry Osmond C.B., and Medrano H. 4 Setaria sphacelata
 
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  American Society of Plant Biologists Annual Meetings, Boston MA LORIAUX S.D, AVENSON T.J., WELLES J.M., MCDERMITT D.K., ECKLES R. D., RIENSCHE B. & GENTY B. (2013) Closing in on maximum yield of chlorophyll fluorescence using a single multiphase flash of sub-saturating intensity Plant, Cell and Environment (2013) 36, 1755–1770 doi: 10.1111/pce.12115
 
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