Department of Earth Sciences , University of Western Ontario , London , Ontario N6A 5B7 , Canada.
Department of Chemistry , University of Waterloo , Waterloo , Ontario N2L 3G1 , Canada.
Inorg Chem. 2019 Mar 4;58(5):3550-3557. doi: 10.1021/acs.inorgchem.9b00142. Epub 2019 Feb 20.
The isostructural dimers of the 1,4-phenylene-bridged bis-1,2,3,5-dithia- and bis-1,2,3,5-diselenadiazolyl diradicals 1,4-S/Se are small band gap semiconductors. The response of their molecular and solid state electronic structures to pressure has been explored over the range 0-10 GPa. The crystal structures, which consist of cofacially aligned (pancake) π-dimers packed into herringbone arrays, experience a continuous, near-isotropic compression. While the intramolecular covalent E-E (E = S/Se) bonds remain relatively unchanged with pressurization, the intradimer E···E separations are significantly shortened. Molecular and band electronic structure calculations using density functional theory methods indicate that compression of the π-dimers leads to a widening of the gap Δ E between the highest occupied and lowest unoccupied molecular orbitals of the dimer, an effect that offsets the expected decrease in the valence-to-conduction band gap E occasioned by pressure-induced spreading of the valence and conduction bands. Consistent with the predicted consequences of this competition between intra- and interdimer interactions, variable temperature high pressure conductivity measurements reveal at best an order-of-magnitude increase in conductivity with pressure for the two compounds over the pressure range 0-10 GPa. While a small reduction in the thermal activation energy E with increasing pressure is observed, extrapolation of the rate of decrease suggests a projected onset of metallization ( E ≈ 0) in excess of 20 GPa.
1,4-亚苯基桥联的双-1,2,3,5-二噻嗪基和双-1,2,3,5-二硒二唑基二自由基 1,4-S/Se 的同晶二聚体是小带隙半导体。它们的分子和固态电子结构对压力的响应在 0-10 GPa 范围内进行了探索。晶体结构由面对面排列的(薄饼状)π-二聚体组装成鱼骨状排列,经历了连续的、各向同性的压缩。虽然随着加压,分子内的共价 E-E(E=S/Se)键保持相对不变,但二聚体之间的 E···E 分离显著缩短。使用密度泛函理论方法进行的分子和能带电子结构计算表明,π-二聚体的压缩导致二聚体的最高占据分子轨道和最低未占据分子轨道之间的带隙ΔE 变宽,这种效应抵消了由于价带和导带的压力诱导扩展而导致的价带到导带带隙 E 减小的预期。与这种二聚体内部和二聚体之间相互作用之间的竞争的预测结果一致,在 0-10 GPa 的压力范围内,两种化合物的变温高压电导率测量显示,电导率随压力的最佳增加幅度为一个数量级。虽然观察到随着压力的增加,热激活能 E 略有降低,但对降低速率的外推表明,在超过 20 GPa 的压力下,金属化(E≈0)的开始。