Atomistic Band Gap Engineering in Donor-Acceptor Polymers

被引:294
作者
Gibson, Gregory L. [1 ]
McCormick, Theresa M. [1 ]
Seferos, Dwight S. [1 ]
机构
[1] Univ Toronto, Dept Chem, Lash Miller Chem Labs, Toronto, ON M5S 3H6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
DESIGNING SYNTHETIC METALS; DENSITY-FUNCTIONAL THERMOCHEMISTRY; STRUCTURE-PROPERTY RELATIONSHIPS; INTRAMOLECULAR CHARGE-TRANSFER; PI-CONJUGATED POLYMERS; PHOTOVOLTAIC APPLICATIONS; CONCEPT WORK; EXACT-EXCHANGE; SOLAR-CELLS; AB-INITIO;
D O I
10.1021/ja208917m
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We have synthesized a series of cyclopentadithiophene-benzochalcogenodiazole donor-acceptor (D-A) copolymers, wherein a single atom in the benzochalcogenodiazole unit is varied from sulfur to selenium to tellurium, which allows us to explicitly study sulfur to selenium to tellurium substitution in D-A copolymers for the first time. The synthesis of S- and Se-containing polymers is straightforward; however, Te-containing polymers must be prepared by postpolymerization single atom substitution. All of the polymers have the representative dual-band optical absorption profile, consisting of both a low- and high-energy optical transition. Optical spectroscopy reveals that heavy atom substitution leads to a red-shift in the low-energy transition, while the high-energy band remains relatively constant in energy. The red-shift in the low-energy transition leads to optical band gap values of 1.59, 1.46, and 1.06 eV for the S-, Se-, and Te-containing polymers, respectively. Additionally, the strength of the low-energy band decreases, while the high-energy band remains constant. These trends cannot be explained by the present D and A theory where optical properties are governed exclusively by the strength of D and A units. A series of optical spectroscopy experiments, solvatochromism studies, density functional theory (DFT) calculations, and time-dependent DFT calculations are used to understand these trends. The red-shift in low-energy absorption is likely due to both a decrease in ionization potential and an increase in bond length and decrease in acceptor aromaticity. The loss of intensity of the low-energy band is likely the result of a loss of electronegativity and the acceptor unit's ability to separate charge. Overall, in addition to the established theory that difference in electron density of the D and A units controls the band gap, single atom substitution at key positions can be used to control the band gap of D-A copolymers.
引用
收藏
页码:539 / 547
页数:9
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