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藻類葉綠素熒光儀——WATER-PAM-II
日期:2017-01-05 19:32:34

主(zhu)要功能(neng)

 

測量參數

Fo, Fm, Fv/Fm, F, Fm’, Fo’, Y(II)=ΔF/Fm’, qP, qN, NPQ, Y(NPQ), Y(NO), ETR, α,Ik,ETRmax

藍藻(zao),綠藻(zao),硅甲(jia)藻(zao)葉綠素a濃(nong)度和總葉綠素a濃(nong)度等

 

應用領域

測(ce)(ce)量(liang)野外自然水樣或實驗室培養(yang)的(de)(de)微藻樣品的(de)(de)光合作用,標準版是一臺超便(bian)攜的(de)(de)設備(bei),在標準版的(de)(de)基礎上加配流通版樣品室和蠕(ru)動泵(beng)套件即可實現連續監測(ce)(ce)。

WATER-PAM-II還搭載與了(le)PHYTO-PAM-II類(lei)似的(de)熒光激(ji)發光譜,基于不同藻(zao)類(lei)在450nm,520nm,630nm,660nm的(de)熒光激(ji)發光譜差(cha)異來計算和(he)分(fen)析(xi)自然水(shui)體藻(zao)類(lei)成分(fen)(藍藻(zao),綠藻(zao),硅甲藻(zao)),分(fen)別測量每個(ge)藻(zao)中類(lei)的(de)葉綠素a濃度和(he)計算總葉綠素a(Total Chla)濃度。

可(ke)(ke)應用于水(shui)生(sheng)生(sheng)物(wu)學(xue)(xue)(xue)、水(shui)域生(sheng)態學(xue)(xue)(xue)、海洋(yang)學(xue)(xue)(xue)、湖(hu)沼學(xue)(xue)(xue)等領域,檢測限達0.1 μgChl/L。可(ke)(ke)用于有(you)害藻華(HABs)的早(zao)期預警。

 

主要技術參數


拼圖.jpg

產地(di):德國(guo) WALZ

 

參(can)考文獻

WATER-PAM-II近期剛推出,以下列表為(wei)WATER-PAM文獻

數(shu)據來源:光(guang)合作用(yong)文(wen)獻(xian) Endnote 數(shu)據庫,更新(xin)至(zhi) 2021年 5月,數(shu)據庫總(zong)文(wen)獻(xian)數(shu)量超(chao)過 10000 篇

原(yuan)始數據來源:Google Scholar

Chen, R.-S., et al. (2021). "Effects of Mn2+ on neutral lipid content, C4 pathway, and related gene expression in Phaeodactylum tricornutum." Journal of Applied Phycology.

Alekseev, A. A., et al. (2021). "Influence of mercury salts on the condition of algae as studied by fluorescence methods." 9th International Conference on Mathematical Modeling 2328(1): 050001.

Baho, D. L., et al. (2021). "Ecological Memory of Historical Contamination Influences the Response of Phytoplankton Communities." Ecosystems.

Bhagooli, R., et al. (2021). "Chlorophyll fluorescence – A tool to assess photosynthetic performance and stress photophysiology in symbiotic marine invertebrates and seaplants." Marine pollution bulletin 165: 112059.

Castro-Varela, P. A., et al. (2021). "Photobiological Effects on Biochemical Composition in Porphyridium cruentum (Rhodophyta) with a Biotechnological Application."  n/a(n/a).

Gu, Z., et al. (2021). "Enhancement of nutrients removal and biomass accumulation of Chlorella vulgaris in pig manure anaerobic digestate effluent by the pretreatment of indigenous bacteria." Bioresource Technology 328: 124846.

Li, S., et al. (2021). "Exploring the potential of photosynthetic induction factor for the commercial production of fucoxanthin in Phaeodactylum tricornutum." Bioprocess and biosystems engineering.

Puig-Fàbregas, J., et al. (2021). "Evaluation of actin as a reference for quantitative gene expression studies in Emiliania huxleyi (Prymnesiophyceae) under ocean acidification conditions." Phycologia: 1-10.

Soleymani Robati, S. M., et al. (2021). "Increase in lipid productivity and photosynthetic activities during distillery wastewater decolorization by Chlorella vulgaris cultures." Applied Microbiology and Biotechnology.

Song, Y., et al. (2021). "Electrokinetic detection and separation of living algae in a microfluidic chip: implication for ship’s ballast water analysis." Environmental Science and Pollution Research.

Xi, Y., et al. (2021). "Photosynthetic profiling of a Dunaliella salina mutant DS240G-1 with improved β-carotene productivity induced by heavy ions irradiation2021." International Journal of Agricultural and Biological Engineering.

Xu, K., et al. (2021). "Toxic and protective mechanisms of cyanobacterium Synechocystis sp. in response to titanium dioxide nanoparticles." Environmental Pollution: 116508.

Zhao, L., et al. (2021). "Light modulates the effect of antibiotic norfloxacin on photosynthetic processes of Microcystis aeruginosa." Aquatic Toxicology 235: 105826.

Zhu, J., et al. (2021). "Bacteriophage therapy on the conchocelis of Pyropia haitanensis (Rhodophyta) infected by Vibrio mediterranei 117-T6." Aquaculture 531: 735853.

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