Plenary speakers: Nanotechnology enabled pathways for energy conversion

S. Goodnick
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Abstract

Nanostructured solar cells have multiple approaches by which they can improve photovoltaic performance through new physical approaches in order to reach thermodynamic limits of energy conversion, circumventing material limitations through bandgap engineered systems and providing new routes for low-cost fabrication by self-assembly or design of new materials. In the present talk, we focus on pathways to high efficiency solar cells and energy conversion using various approaches employing nanostructured materials. We first discuss the limits of conventional photovoltaics, and advanced concept approaches to exceed the so-called Shockley-Queisser limit for single bandgap cells. We then discuss particular approaches that are actively being investigated including Si heterojunction solar cells with carrier selective contacts, nanowire solar cells as active components of multi-junction solar cell, quantum dot solar cells for intermediate band devices, and multiexciton generation for increasing the quantum yield above unity in quantum dot and nanowire structures. Hot carrier solar cells are another approach to high efficiency discussed, where the critical issue is reducing the energy loss rate of photoexcited carriers, either in low-dimensional nanostructured materials where this rate is reduced, or in phononic bandgap materials in which nonequilibrium phonons reduce carrier cooling, and allow extraction at high energy. Another way that nanomaterials improve efficiency which we discuss, is in improving light trapping of incident solar radiation, using nanowires and nanoparticles as scatterers in the diffraction limit, to increase absorption by increasing the optical path length in the device. Finally, we discuss hybrid high temperature multijunction photovoltaics coupled with concentrating solar thermal in order to improve the system efficiency above either that of the photovoltaic or CSP system by itself.
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全体发言嘉宾:纳米技术实现能量转换的途径
纳米结构太阳能电池有多种方法可以通过新的物理方法来提高光伏性能,以达到能量转换的热力学极限,通过带隙工程系统绕过材料限制,并通过自组装或设计新材料为低成本制造提供新的途径。在本次演讲中,我们将重点介绍利用纳米结构材料的各种方法来实现高效太阳能电池和能量转换的途径。我们首先讨论了传统光伏电池的极限,以及超越单个带隙电池所谓的Shockley-Queisser极限的先进概念方法。然后,我们讨论了正在积极研究的具体方法,包括具有载流子选择性接触的硅异质结太阳能电池,作为多结太阳能电池的有源组件的纳米线太阳能电池,用于中间带器件的量子点太阳能电池,以及用于提高量子点和纳米线结构中统一以上量子产率的多激子产生。热载流子太阳能电池是讨论的另一种高效率方法,其关键问题是降低光激发载流子的能量损失率,无论是在低维纳米结构材料中,这一速率降低,还是在声子带隙材料中,非平衡声子减少载流子冷却,并允许在高能量下提取。我们讨论的另一种纳米材料提高效率的方法是改善入射太阳辐射的光捕获,在衍射极限下使用纳米线和纳米颗粒作为散射体,通过增加器件中的光程长度来增加吸收。最后,我们讨论了混合高温多结光伏与聚光太阳能热耦合,以提高系统效率高于光伏或CSP系统本身。
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