Alidoust Nima, Carter Emily A
Department of Electrical Engineering, Princeton University, Princeton, NJ 08544-5263, USA.
Phys Chem Chem Phys. 2015 Jul 21;17(27):18098-110. doi: 10.1039/c5cp03429a. Epub 2015 Jun 23.
Alloying nickel oxide (NiO) with lithium oxide (Li2O) at high Li concentrations may reduce NiO's band gap and expand its use as a light absorber in photocatalytic and tandem dye-sensitized solar cell technologies. In this work, we evaluate the viability of this alloy as a p-type hole transport material. We use embedded cluster models, along with unrestricted Hartree-Fock and complete active space self-consistent field theories, to study the impact of alloying on polaronic transport of holes. Our calculated energy barrier for hole transfer in undoped NiO is in excellent agreement with the experimental value of ∼0.1 eV. We predict that hole transport in NiO is anisotropic and mostly confined parallel to the (111) ferromagnetic planes. Applying the same model to Li-doped NiO indicates that isolated Li ions do not introduce free holes into NiO samples. However, free holes can be created in the homogeneous Li0.125Ni0.875O alloy, in which the Li concentration is very high. Our kinetic Monte Carlo calculations show that hole mobility in this alloy is lower than in undoped NiO. However, the additional free holes and the predicted lower band gap of Li0.125Ni0.875O should increase hole conductivity compared to NiO upon alloy formation. Therefore, Li0.125Ni0.875O alloys have potential for use as a hole transporter, as well as a sunlight absorber, in a variety of solar energy applications.
在高锂浓度下将氧化镍(NiO)与氧化锂(Li₂O)合金化,可能会降低NiO的带隙,并扩大其在光催化和串联染料敏化太阳能电池技术中作为光吸收剂的用途。在这项工作中,我们评估了这种合金作为p型空穴传输材料的可行性。我们使用嵌入簇模型,结合无限制Hartree-Fock和完全活性空间自洽场理论,来研究合金化对空穴极化子传输的影响。我们计算出的未掺杂NiO中空穴转移的能垒与约0.1 eV的实验值非常吻合。我们预测,NiO中的空穴传输是各向异性的,并且大多局限于平行于(111)铁磁平面。将相同模型应用于锂掺杂的NiO表明,孤立的锂离子不会将自由空穴引入NiO样品中。然而,在锂浓度非常高的均匀Li₀.₁₂₅Ni₀.₈₇₅O合金中可以产生自由空穴。我们的动力学蒙特卡罗计算表明,这种合金中的空穴迁移率低于未掺杂的NiO。然而,与合金形成后的NiO相比,Li₀.₁₂₅Ni₀.₈₇₅O中额外的自由空穴和预测的较低带隙应会提高空穴电导率。因此,Li₀.₁₂₅Ni₀.₈₇₅O合金在各种太阳能应用中具有用作空穴传输体以及阳光吸收剂的潜力。