标题: 应用软性电子元件制备及表面粗糙化技术于可挠式高效率单晶矽太阳能电池
Ultrathin single-crystalline silicon solar cells for mechanically flexible and optimal surface morphology designs
作者: 庄怡君
柯富祥
材料科学与工程学系奈米科技硕博士班
关键字: 单晶矽;软性电子元件;太阳能电池;金字塔结构;化学湿式蚀刻;single-crystalline silicon;flexible eletronics;photovoltaic cell;pyramidal structure;chemical wet etching
公开日期: 2011
摘要: 近数十年来,由于面临能源枯竭和气候变迁警讯所导致油价不断上涨以及温室效应的问题,因此以太阳能电池为主要发展的绿能科技产业开始备受瞩目。太阳能电池主要是利用光伏效应将太阳能直接转换成可用电能的无污染装置,目前太阳能电池市场主要以单晶矽、多晶矽以及非晶矽三大种类为主,其中以单晶矽太阳能电池的光电转换效率最高。然而,随着半导体科技产业发达以及生活便利之众多需求,结合软性电子元件技术和太阳能电池的发展已如火如荼的展开,其中以非晶矽和有机材料使用塑胶基板当作基材所制成的可挠曲软性太阳能元件最为广泛,但非晶矽太阳能电池的光电转换效率相较于一般不可挠的单晶矽基材元件为差,且塑胶基板无法耐高温因此不适用于一般工业化制成。因此,倘若可以研发出可挠曲的单晶矽高效能太阳能电池,对于未来的应用性将可大幅提升,对于绿能产业也将是一大突破。本研究主要以单晶矽作为基材,使用化学蚀刻技术将其制备为超薄可挠式矽薄片,并针对上电极最佳化,加上表面粗糙化技术以及氮化矽钝化层兼抗反射层之设计,使入射光可在超薄可挠式的单晶矽太阳能电池元件内做最大之吸收利用,可以成功达到13.8 %的光电转换效率。本研究结果显示,此元件不仅拥有轻薄易携带的优势,且其可挠式的特性将可贴附于各种凹凸曲面上。因此,结合单晶矽优越的光电转换效率以及软性可挠式的优势,对于未来在日常生活中的实质应用范围将可以更为广泛。
During the last couple of decades, people have pay more and more attention to photovoltaic technologies in virtue of facing the nature resources crisis resulting in oil price increment as well as the ubiquitous signs of climate change caused by the greenhouse effect. Basically, a photovoltaic cell is a zero pollution device which can convert the energy of sunlight directly into useful electricity by the photovoltaic effect. Nowadays, there are three major kinds of commercial-grade solar photovoltaics on the commercial photovoltaic market, including single-crystalline, poly-crystalline and amorphous structure type. Among all the types mentioned above, single-crystalline silicon photovoltaic cells especially have the superior conversion efficiency. Recently, the evolution of photovoltaic cells combining flexible electronics with solar photovoltaic technologies rapidly grows up so as to satisfy the flexibility and elasticity needs. In general, amorphous and organic flexible photovoltaic devices base on plastic substrates are common in the traditional flexible industry but supply rather poor electrical properties. Even worse, the plastic substrates provide extremely low endurable under the high temperature ambience in industrial procedure. Therefore, it will make a breakthrough if it is able to develop bendable single-crystalline photovoltaic cells which can compatible with general procedure but also provide highly electrical properties. This study aims to fabricate the bendable solar photovoltaic by practical and reproducible method. In detail, the bendable solar photovoltaic was manufactured on the 30 □m-thickness single-crystalline silicon chip which was achieved by treating with chemical etching process. Additionally, our design of the flexible device incorporates optimal compute of front contact, with some common techniques to reduce light trapping including surface texturization and antireflection layer deposition which can minimize the reflectivity losses of the incident light. By applying as-mentioned methods, the bendable device gives conversion efficiency up to 13.8 %. Moreover, the outstanding lightweight superiority and mechanical flexibility of these flexible ultrathin devices utilize easily-achieved integrated applications to various product surfaces and pave the way for portable purpose. With the reducing usage of required semiconductor material and excellent mechanical flexibility, these novel flexible solar photovoltaics are ready to satisfy with market demands and promote competitiveness in the mass production and commercial market.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT079852515
http://hdl.handle.net/11536/48227
显示于类别:Thesis