Simulations Suggest Possible Triply Bonded Phosphorus≡E13 Molecules (E13 = B, Al, Ga, In, and Tl)

Jia-Syun Lu, Ming‐Chung Yang, M. Su
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Abstract

The effect of substitution on the potential energy surfaces of RE13 ☰ PR (E13 = B, Al, Ga, In, Tl; R = F, OH, H, CH3, SiH3, SiMe(Si t Bu3)2, Si i PrDis2, Tbt, and Ar* is studied using density functional theory (M06-2X/Def2-TZVP, B3PW91/Def2-TZVP and B3LYP/LANL2DZ + dp). The theoretical results demonstrate that all triply bonded RE13 ☰ PR compounds with small substituents are unstable and spontaneously rearrange to other doubly bonded isomers. That is, the smaller groups, such as R 〓 F, OH, H, CH3 and SiH3, neither kinetically nor thermo-dynamically stabilize the triply bonded RE13 ☰ PR compounds. However, the triply bonded R ’ E13 ☰ PR´ molecules, possessing bulkier substituents (R´ = SiMe(Si t Bu3)2, Si i PrDis2, Tbt and Ar*), are found to have a global minimum on the singlet potential energy surface. In partic- ular, the bonding character of the R ’ E13 ☰ PR´ species is well defined by the valence-electron bonding model (model [II]). That is to say, R ’ E13 ☰ PR´ molecules that feature groups are regarded as R 0 -E13 P-R 0 . The theoretical evidence shows that both the electronic and the steric effects of bulkier substituent groups play a prominent role in rendering triply bonded R 0 E13 ☰ PR 0 species synthetically accessible and isolable in a stable form.
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模拟表明可能的三键磷≡E13分子(E13 = B, Al, Ga, In和Tl)
PR (E13 = B, Al, Ga, In, Tl;利用密度泛函理论(M06-2X/Def2-TZVP、B3PW91/Def2-TZVP和B3LYP/LANL2DZ + dp)研究了R = F、OH、H、CH3、SiH3、SiMe(Si t Bu3)2、Si i PrDis2、Tbt和Ar*。理论结果表明,所有具有小取代基的三键RE13 PR化合物都是不稳定的,可以自发重排到其他双键异构体上。也就是说,较小的基团,如R〓F、OH、H、CH3和SiH3,既不能在动力学上也不能在热力学上稳定三键的RE13 / PR化合物。然而,具有较大取代基(R′= SiMe(Si t Bu3)2、Si i PrDis2、Tbt和Ar*)的三键R′E13´PR′分子在单重态势能表面上具有全局最小值。特别是,R’E13´PR’种的成键特性由价电子成键模型(模型[II])很好地定义。也就是说,把具有特征基团的R’E13 PR’分子记为R 0 -E13 P-R 0。理论证据表明,体积较大的取代基的电子效应和空间效应在使三键r0以稳定的形式合成可接近和分离的过程中起着重要作用。
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Introductory Chapter: The Overview of Phosphorous Recovery Phosphorus Fertilizer: The Original and Commercial Sources Simulations Suggest Possible Triply Bonded Phosphorus≡E13 Molecules (E13 = B, Al, Ga, In, and Tl) Phosphorus Eutrophication and Mitigation Strategies Phosphorus Recovery by Crystallization
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