{"doi":"10.1002/9783527610426.bard060404","title":"Optimizing Photoelectrochemical Solar Energy Conversion: Multiple Bandgap and Solution Phase Phenomena","abstract":"<jats:title>Abstract</jats:title>\n          <jats:p>The sections in this article are</jats:p>\n          <jats:sec>\n            <jats:title>Introduction</jats:title>\n          </jats:sec>\n          <jats:sec>\n            <jats:title>Multiple Band Gap Photoelectrochemistry</jats:title>\n            <jats:sec>\n              <jats:title>Theory of Multiple Band Gap Solar Cell Configurations</jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>\n                Bipolar Band Gap\n                <jats:styled-content style=\"fixed-case\">PECs</jats:styled-content>\n              </jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>\n                Inverted Band Gap\n                <jats:styled-content style=\"fixed-case\">PECs</jats:styled-content>\n              </jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>Bipolar Band Gap Solar Storage Cells</jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>Bipolar Band Gap Solar Hydrolysis (hydrogen generation) Cells</jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>Higher Solar Production Rates of Hydrogen Fuel are Attainable</jats:title>\n            </jats:sec>\n          </jats:sec>\n          <jats:sec>\n            <jats:title>Solution Phase Phenomena</jats:title>\n            <jats:sec>\n              <jats:title>Solution Phase Chemistry Optimization</jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>\n                <jats:italic>\n                  <jats:styled-content style=\"fixed-case\">n</jats:styled-content>\n                </jats:italic>\n                ‐\n                <jats:styled-content style=\"fixed-case\">Cd</jats:styled-content>\n                Chalcogenide/Aqueous Polysulfide Photoelectrochemistry\n              </jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>\n                <jats:italic>\n                  <jats:styled-content style=\"fixed-case\">na</jats:styled-content>\n                </jats:italic>\n                ‐\n                <jats:styled-content style=\"fixed-case\">Cd</jats:styled-content>\n                Chalcogenide/Aqueous Ferrocyanide Photoelectrochemistry\n              </jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>\n                <jats:italic>\n                  <jats:styled-content style=\"fixed-case\">n</jats:styled-content>\n                </jats:italic>\n                ‐\n                <jats:styled-content style=\"fixed-case\">Ga</jats:styled-content>\n                <jats:styled-content style=\"fixed-case\">As</jats:styled-content>\n                /Aqueous Polyselenide Photoelectrochemistry\n              </jats:title>\n            </jats:sec>\n            <jats:sec>\n              <jats:title>Aqueous Polyiodide Photoelectrochemistry</jats:title>\n            </jats:sec>\n          </jats:sec>\n          <jats:sec>\n            <jats:title>Concluding Remarks</jats:title>\n          </jats:sec>\n          <jats:sec>\n            <jats:title>Acknowledgment</jats:title>\n          </jats:sec>","journal":"Encyclopedia of 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