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A 14.7% Organic/Silicon Nanoholes Hybrid Solar Cell via Interfacial Engineering by Solution-Processed Inorganic Conformal Layer

机译:通过溶液加工的无机共形层进行界面工程设计的14.7%有机/硅纳米孔混合太阳能电池

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We demonstrated a high-performance Si-organic hybrid heterojunction solar cell utilizing low-temperature and liquid-phase-processed TiO2 as an interlayer between poly(3,4-ethylene dioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) and Si nanoholes to produce a conformal contact on the surface of the Si nanostructure. The hydrophilic TiO2/Si-nanohole surface enabled the PEDOT:PSS to flow into the spacing of the close-packed nanoholes. Scanning electron microscopy images were used to confirm the PEDOT:PSS nanohole filling induced by the TiO2. With forming gas annealing of the double-sided TiO2, high V-oc (0.63 V) and J(sc) (35.7 mA/cm2) values were obtained, yielding a high power conversion efficiency of 14.7%. The high V-oc was attributed to the surface passivation of Si by annealed TiO2. The X-ray photoelectron spectroscopy investigation at the TiO2/Si interface indicates the TiOx signal decreased and the TiO2 and SiOx signals increased after annealing. The Si-O bonding found in the O is study appeared in the form of Si-O-Si bonding to serve surface passivation. alignment of the PEDOT:PSS/TiO2-Si hetero-interfaces was postulated and plotted. The V-bi in the system after annealing was assumed to be higher because of the reduction of bulk and surface states that yield high V-oc. After annealing, the V-bi increased from 0.805 to 0.905 V. The reduction of surface recombination velocity proved the passivation ability of TiO2 after annealing. With proven surface passivation and conformal PEDOT:PSS/Si nanohole interfaces for enhanced contact, this Si-organic hybrid heterojunction solar cell with solution-processed TiO2 interlayers has excellent potential for application as a high-efficiency and low-cost Si solar cell.
机译:我们展示了一种利用低温和液相处理的TiO2作为聚(3,4-乙撑二氧噻吩):聚(苯乙烯磺酸盐)(PEDOT:PSS)和Si纳米孔之间的中间层的高性能硅有机混合异质结太阳能电池在Si纳米结构的表面上产生保形接触。亲水性的TiO2 / Si-纳米孔表面使PEDOT:PSS能够流入紧密堆积的纳米孔的间隙。扫描电子显微镜图像用于确认由TiO2诱导的PEDOT:PSS纳米孔填充。通过双面TiO2的成型气体退火,可获得高V-oc(0.63 V)和J(sc)(35.7 mA / cm2)值,从而产生14.7%的高功率转换效率。高V-oc归因于退火的TiO2对Si的表面钝化作用。 TiO2 / Si界面的X射线光电子能谱研究表明,退火后TiOx信号降低,而TiO2和SiOx信号升高。研究发现,在O中发现的Si-O键以Si-O-Si键的形式出现,用于表面钝化。假定并绘制了PEDOT:PSS / TiO2 / n-Si异质界面的比对。假定退火后系统中的V-bi较高,因为降低了产生高V-oc的体积和表面状态。退火后,V-bi从0.805 V增加到0.905V。表面复合速度的降低证明了TiO2退火后的钝化能力。具有经过验证的表面钝化和保形的PEDOT:PSS / Si纳米孔界面可增强接触,这种具有溶液处理的TiO2中间层的Si-有机混合异质结太阳能电池具有极高的应用潜力,可作为高效低成本的Si太阳能电池。

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