Cai Xinyong, Chen Yuanzheng, Sun Bai, Chen Jiao, Wang Hongyan, Ni Yuxiang, Tao Li, Wang Hui, Zhu Shouhui, Li Xiumei, Wang Yanchao, Lv Jian, Feng Xiaolei, Redfern Simon A T, Chen Zhongfang
School of Physical Science and Technology, Key Laboratory of Advanced Technologies of Materials, Ministry of Education of China, Southwest Jiaotong University, Chengdu 610031, China.
Nanoscale. 2019 Apr 25;11(17):8260-8269. doi: 10.1039/c9nr01261c.
The successful fabrication of black phosphorene (Black-P) in 2014 and subsequent synthesis of layered black As1-xPx alloys have inspired research into two-dimensional (2D) binary As-P compounds. The very recent success in growing blue phosphorene (Blue-P) further motivated exploration of 2D Blue-AsP materials. Here, using ab initio swarm-intelligence global minimum structure-searching methods, we have obtained a series of novel and energetically favored 2D Blue-AsP (denoted x-AsP, x = I, II, III, IV, V) compounds with As : P = 1 : 1 stoichiometry. They display similar honeycomb structures to Blue-P. Remarkably, the lowest-energy AsP monolayer, namely I-AsP, not only possesses a quasi-direct band gap (2.41 eV), which can be tuned to a direct and optimal gap for photovoltaic applications by in-plane strain, but also has an ultrahigh electronic mobility up to ∼7.4 × 104 cm2 V-1 s-1, far surpassing that of Blue-P, and also exhibits high absorption coefficients (×105 cm-1). Our simulations also show that 30 nm-thick I-AsP sheet-based cells have photovoltaic efficiency as high as ∼12%, and the I-AsP/CdSe heterostructure solar cells possess a power conversion efficiency as high as ∼13%. All these outstanding characteristics suggest the I-AsP sheet as a promising material for high-efficiency solar cells.
2014年黑磷(Black-P)的成功制备以及随后层状黑砷磷合金的合成激发了对二维(2D)二元砷磷化合物的研究。最近蓝色磷(Blue-P)生长的成功进一步推动了对二维蓝砷磷材料的探索。在此,我们使用从头算群体智能全局最小结构搜索方法,获得了一系列新颖且能量上有利的二维蓝砷磷(表示为x-AsP,x = I、II、III、IV、V)化合物,其化学计量比为As : P = 1 : 1。它们呈现出与Blue-P相似的蜂窝状结构。值得注意的是,能量最低的砷磷单层,即I-AsP,不仅具有准直接带隙(2.41 eV),通过面内应变可将其调谐为适用于光伏应用的直接且最佳带隙,而且具有高达约7.4 × 104 cm2 V-1 s-1的超高电子迁移率,远远超过Blue-P,并且还表现出高吸收系数(×105 cm-1)。我们的模拟还表明,基于30 nm厚I-AsP薄片的电池具有高达约12%的光伏效率,并且I-AsP/CdSe异质结构太阳能电池具有高达约13%的功率转换效率。所有这些优异特性表明I-AsP薄片是一种用于高效太阳能电池的有前途的材料。