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The photosynthetic efficiency is the fraction of light energy converted into chemical energy during photosynthesis in plants and algae. Photosynthesis can be described by the simplified chemical reaction
where CH2O represents carbohydrates such as sugars, cellulose, and lignin. The value of the photosynthetic efficiency is dependent on how light energy is defined. On a molecular level, the theoretical limit in efficiency is 25 percent[1] for photosynthetically active radiation (wavelengths from 400 to 700 nanometer). For actual sunlight, where only 45 percent of the light is photosynthetically active, the theoretical maximum efficiency of solar energy conversion is approximately 11 percent. In actuality, however, plants do not absorb all incoming sunlight (due to reflection, respiration requirements of photosynthesis and the need for optimal solar radiation levels) and do not convert all harvested energy into biomass, which results in an overall photosynthetic efficiency of 3 to 6 percent of total solar radiation.[1]
[edit] Typical efficienciesQuoted values sunlight-to-biomass efficiency
The following is a breakdown of the energetics of the photosynthesis process from Photosynthesis by Hall and Rao:[5] Starting with the solar spectrum falling on a leaf
[edit] Efficiencies of Various Energy CropsPopular energy crops include Oil Palm, Soybean Oil, Castor Oil, Sunflower Oil, Safflower Oil, Corn Ethanol, and Sugar Cane Ethanol. An analysis of a proposed Hawaiian oil palm plantation claimed to yield 600 gallons of biodiesel per acre per year. That's 2835 watts per acre or 0.7 watts per square meter. Cite biodiesel energy content. Typical insolation in Hawaii is more like 5.5 kW-hrs/square meter/day or 230 watts. Cite NREL website. So this particular Hawaiian oil palm plantation, if it delivered the claimed 600 gallons of biodiesel per acre per year would be converting 0.3% of the incident solar energy to chemical fuel. Total photosynthetic efficiency would include more than just the biodiesel oil, so this 0.3% number is something of a lower bound. [1] has a calculation that results in: "Per hectare per year, the biomass produced corresponds to 0.27 TJ. This is equivalent to 0.86 W per square meter. Assuming an average insolation of 225 W per square meter, the photosynthetic efficiency of sugar cane is 0.38%." Sucrose accounts for little more than 30% of the chemical energy stored in the mature plant; 35% is in the leaves and stem tips, which are left in the fields during harvest, and 35% are in the fibrous material (bagasse) left over from pressing. [edit] C3 vs C4 PlantsC3 plants use the [Calvin_Cycle]. The C4 plants separate rubisco from atmospheric oxygen fixing carbon in the mesophyll cells and using oxaloacetate and malate to ferry the fixed carbon to rubisco and the rest of the Calvin cycle enzymes isolated in the bundle-sheath cells. The intermediate compounds both contain four carbon atoms, hence the name C4. The C3 pathway requires 18 ATP for the synthesis of one molecule of glucose while the C4 pathway requires 30 ATP. C4 is an evolutionary advancement over the simpler C3 cycle which operates in most plants. Corn and Sugar Cane are examples of C4 plants. These plants are economically important in part because of their relatively high photosynthetic efficiencies compared to many other crops. [edit] References
Photosynthetically_active_radiation
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