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Improved Morphology and Efficiency of Polymer Solar Cells by Processing Donor–Acceptor Copolymer Additives

, , , , , , , and . Advanced Functional Materials, 26 (35): 6479--6488 (2016)
DOI: 10.1002/adfm.201601625

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Improved Morphology and Efficiency of Polymer Solar Cells by Processing Donor–Acceptor Copolymer Additives, , , , , , , and . Advanced Functional Materials, 26 (35): 6479--6488 (2016)High-Performance Ternary Organic Solar Cell Enabled by a Thick Active Layer Containing a Liquid Crystalline Small Molecule Donor, , , , , , , , , and . Journal of the American Chemical Society, 139 (6): 2387-2395 (2017)PMID: 28127955.Spectral Engineering of Semitransparent Polymer Solar Cells for Greenhouse Applications, , , , and . Advanced Energy Materials, (December 2018)Toward High Efficiency Polymer Solar Cells: Influence of Local Chemical Environment and Morphology, , , , , , , , , and 2 other author(s). Advanced Energy Materials, (2016)Polymer Solar Cells: Spectral Engineering of Semitransparent Polymer Solar Cells for Greenhouse Applications (Adv. Energy Mater. 5/2019), , , , and . Advanced Energy Materials, 9 (5): 1970016 (February 2019)Toward High Efficiency Polymer Solar Cells: Rearranging the Backbone Units into a Readily Accessible Random Tetrapolymer, , , , , , , , , and 1 other author(s). Advanced Energy Materials, (2017)Overcoming Space‐Charge Effect for Efficient Thick‐Film Non‐Fullerene Organic Solar Cells, , , , , , , and . Advanced Energy Materials, (July 2018)