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Solar organic

Sodium nitrate is also used in formulations of heat-transfer salts for he at-treatment baths for alloys and metals, mbber vulcanization, and petrochemical industries. A mixture of sodium nitrate and potassium nitrate is used to capture solar energy (qv) to transform it into electrical energy. The potential of sodium nitrate in the field of solar salts depends on the commercial development of this process. Other uses of sodium nitrate include water (qv) treatment, ice melting, adhesives (qv), cleaning compounds, pyrotechnics, curing bacons and meats (see Food additives), organics nitration, certain types of pharmaceutical production, refining of some alloys, recovery of lead, and production of uranium. [Pg.197]

Sulfur dioxide occurs in industrial and urban atmospheres at 1 ppb—1 ppm and in remote areas of the earth at 50—120 ppt (27). Plants and animals have a natural tolerance to low levels of sulfur dioxide. Natural sources include volcanoes and volcanic vents, decaying organic matter, and solar action on seawater (28,290,291). Sulfur dioxide is beHeved to be the main sulfur species produced by oxidation of dimethyl sulfide that is emitted from the ocean. [Pg.147]

Biomass All organic matters including those belonging to the aquatic environment that grow by the photosynthetic conversion of low energy carbon compounds employing solar energy. [Pg.900]

Biomass refers to the total weight of organisms in the ecosystem. The small amount of solar radiation incorporated into living systems translates into the production of huge amounts of biomass On a worldwide basis, 120 billion metric tons of organic matter are produced by photosynthesis each year. However,... [Pg.181]

The aim of this chapter is to give a state-of-the-art report on the plastic solar cells based on conjugated polymers. Results from other organic solar cells like pristine fullerene cells [7, 8], dye-sensitized liquid electrolyte [9], or solid state polymer electrolyte cells [10], pure dye cells [11, 12], or small molecule cells [13], mostly based on heterojunctions between phthaocyanines and perylenes [14], will not be discussed. Extensive literature exists on the fabrication of solar cells based on small molecular dyes with donor-acceptor systems (see for example [2, 3] and references therein). [Pg.271]

The chapter is organized as follows the second section will discuss the photophysics of conjugated polymer/fullerene composites as a standard model for a charge-generating layer in plastic solar cells. Pristine polymer devices will be discussed in the third section while bilayer and interpenetrating network devices are presented in Sections 4 and 5. Section 6 contains some remarks on large area plastic solar cells and Section 7 conclusions. [Pg.271]

Today microemulsions are used in catalysis, preparation of submicron particles, solar energy conversion, extraction of minerals and protein, detergency and lubrication [58]. Most studies in the field of basic research have dealt with the physical chemistry of the systems themselves and only recently have microemulsions been used as a reaction medium in organic synthesis. The reactions investigated to date include nucleophilic substitution and additions [59], oxidations [59-61], alkylation [62], synthesis of trialkylamines [63], coupling of aryl halides [64], nitration of phenols [65], photoamidation of fluoroolefins [66] and some Diels-Alder reactions. [Pg.281]

Square brackets around a molecular species indicate atmospheric concentration. The rate constants k times the reactant concentration product refers to the rates of the chemical reactions of the indicated number. The photolytic flux term /l4 refers to the photodissociation rate of N02 in Reaction R14, its value is proportional to solar intensity.]. RO2 stands for an organic peroxyl radical (R is an organic group) that is capable of oxidizing NO to NO2. Hydrocarbons oxidize to form a very large number of different RO2 species the simplest of the family is methylperoxyl radical involved in R5, R6 and R8. [Pg.72]


See other pages where Solar organic is mentioned: [Pg.1243]    [Pg.2888]    [Pg.240]    [Pg.245]    [Pg.245]    [Pg.245]    [Pg.3]    [Pg.502]    [Pg.9]    [Pg.28]    [Pg.30]    [Pg.84]    [Pg.398]    [Pg.23]    [Pg.122]    [Pg.215]    [Pg.516]    [Pg.2357]    [Pg.157]    [Pg.29]    [Pg.32]    [Pg.459]    [Pg.1092]    [Pg.3]    [Pg.66]    [Pg.571]    [Pg.709]    [Pg.399]    [Pg.180]    [Pg.180]    [Pg.180]    [Pg.180]    [Pg.1052]    [Pg.1057]    [Pg.1062]    [Pg.271]    [Pg.291]    [Pg.599]    [Pg.600]    [Pg.437]    [Pg.472]    [Pg.25]    [Pg.202]   
See also in sourсe #XX -- [ Pg.155 , Pg.159 ]

See also in sourсe #XX -- [ Pg.33 , Pg.156 ]




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Acceptor organic solar cells

Applications of Metal Containing Polymers in Organic Solar Cells

Charge Transport in Organic Solar Cells

Charge recombination in organic solar cells

Coatings organic solar cells

Composite Layers for Organic Solar Cells

Donor organic solar cells

Electrically conducting coatings in organic solar cells (OSCs)

Excited state organic solar cells

Excitons organic solar cells

Fullerene organic solar cells

Generation, Recombination and Transport in Organic Solar Cells

Light trapping, organic solar cells

Metal-containing polymers organic solar cells

Organic light emitting diodes and solar cells

Organic polymeric solar cells

Organic solar cell

Organic solar cell charge generation process

Organic solar cell charge recombination

Organic solar cell charge transport

Organic solar cell devices

Organic solar cell overview

Organic solar cells P3HT:PCBM devices

Organic solar cells PEDOT

Organic solar cells active layer

Organic solar cells bilayer structure

Organic solar cells bulk heterojunction structure

Organic solar cells conversion efficiencies

Organic solar cells device physics

Organic solar cells device stability

Organic solar cells electrically conducting coatings

Organic solar cells exciton dissociation

Organic solar cells fill factor

Organic solar cells improving electrodes

Organic solar cells open-circuit voltage

Organic solar cells phthalocyanines

Organic solar cells polymer bilayer devices

Organic solar cells polymer:fullerene devices

Organic solar cells power conversion efficiencies

Organic solar cells short-circuit current density

Organic solar cells silicon-based

Organic solar cells systems

Organic solar cells thin film

Polymer solar cells organic-inorganic hybrid

Soil solarization organic amendments

Solar cells organic, types

Solar cells photovoltaics, organic

Solar energy organic dyes

Solar radiation exposure, chemical defenses marine organisms against

Solid organic solar cells

Synthesis of Small Molecule Donors for High Efficiency Solution Processed Organic Solar Cells

Thin film solar cells, organic complexes

Thin film solar cells, organic polymers

Types of Organic Solar Cells

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