A. L. M. 2008 Sublethal toxic effects in a simple aquatic food chain. Ecol. Model. 212, 304 -318. (doi:10.1016/j.ecolmodel.2007.10.042)B. W. Kooi, D. Bontje, G. A. K. Van Voorn, and S. A. L. M. Kooijman. Sublethal toxic effects in a simple aquatic food chain. ...
Peace, A. Effects of light, nutrients, and food chain length on trophic efficiencies in simple stoichiometric aquatic food chain models. Ecol. Model. 2015, 312, 125-135. [CrossRef]Peace A.Effects of light,nutrients,and food chain length on trophic efficiencies in simple stoichiometric aquatic ...
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From the past few years, synthetic polymer-based catalyst supports were synthesized, and catalytic efficiencies of various metal nanoparticles were analyzed25,28,29. The hydrogels were exposed as good supports for catalyst in aquatic chemical reactions because in this case the catalyst surface is expos...
experimental results regarding the safety assessment of aquatic life [42]. The very direct introduction of nanomaterials that are difficult to degrade naturally into organisms and ecosystems could be a double-edged sword. This is likely to be one of the primary constraints on market regulation of ...
A major source of uncertainty in predicting selenium (Se) distribution in aquatic food webs lies in the enrichment factor (EF), the ratio of Se bioconcentration in primary producers and microorganisms relative to the concentration of Se in the surrounding water. It has been well demonstrated that...
A marriage of convenience; a simple food chain comprised of Lemna minor (L.) and Gammarus pulex (L.) to study the dietary transfer of zincDietary transferGammarus sp.Lemna sp.trophic interactionszincMacrophytes contribute significantly to the cycling of metals in aquatic systems, through ...
However, intensive systems of animal food production are favorable to the spread of infectious diseases due to high population density. This is specially so in aquaculture, as the aquatic environment is prone to disease proliferation. In addition, abrupt physico-chemical changes in the aquatic ...
TBBPA is now detectable in environmental media such as soil (Lu et al., 2018; Sun et al., 2014), dust (Barghi et al., 2017), sediment (Cheng and Hua, 2018), water (Chokwe et al., 2017), aquatic organisms (Ashizuka et al., 2008; de Jourdan et al., 2013), human being blood...