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      The optical performance of random and periodic textured mono crystalline silicon surfaces for photovoltaic applications

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          Abstract

          Surface textures that result in high optical yields are crucial for high efficiency photovoltaic (PV) devices. In this work three different texturing approaches are presented that result in smooth concave structures devoid of sharp features. Such features can sustain the crack-free growth of device quality nano- to poly-crystalline materials such as nano-crystalline silicon, perovskites or C(I)GS, facilitating routes towards hybrid multijunction PV devices. A sacrificial implanted poly-c-Si layer is used to develop a random surface texture for the first texturing approach ( T sac). The influence of the processing conditions, such as layer thickness, implantation energy, dose and ion type, annealing time and temperature, of the sacrificial layer on the developed surface features is investigated. Additionally, a photolithographically developed honeycomb texture ( T honey) is presented. The influence of mask design on the honeycomb features is discussed and a relation is established between the honeycomb period and crack formation in nano-crystalline silicon layers. The reflective properties (spectral reflection, haze in reflection and angular intensity distribution) of these approaches are characterized and compared to a third texturing approach, T sp, the result of chemically smoothened pyramidal <111> features. It was demonstrated that high optical scattering yields can be achieved for both T honey and T sp. Additionally, the performance of a-Si/nc-Si tandem devices processed onto the different textures is compared using both optical device simulations and real device measurements. Simulations demonstrate strong improvements in J sc -sum (≈45%), in reference to a flat surface, and high V oc * FF of over 1 V are demonstrated for T sp.

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          Most cited references34

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          Textured interfaces in monolithic perovskite/silicon tandem solar cells: advanced light management for improved efficiency and energy yield

          25.5% efficiency is demonstrated for monolithic perovskite/silicon tandem solar cell using textured foil and the impact of texture position on performance and energy yield is simulated. Efficient light management in monolithic perovskite/silicon tandem solar cells is one of the prerequisites for achieving high power conversion efficiencies (PCEs). Textured silicon wafers can be utilized for light management, however, this is typically not compatible with perovskite solution processing. Here, we instead employ a textured light management (LM) foil on the front-side of a tandem solar cell processed on a wafer with a planar front-side and textured back-side. This way the PCE of monolithic, 2-terminal perovskite/silicon-heterojunction tandem solar cells is significantly improved from 23.4% to 25.5%. Furthermore, we validate an advanced numerical model for our fabricated device and use it to optically optimize a number of device designs with textures at different interfaces with respect to the PCE and energy yield. These simulations predict a slightly lower optimal bandgap of the perovskite top cell in a textured device as compared to a flat one and demonstrate strong interdependency between the bandgap and the texture position in the monolithic stack. We estimate the PCE potential for the best performing both-side textured device to be 32.5% for a perovskite bandgap of 1.66 eV. Furthermore, the results show that under perpendicular illumination conditions, for optimized designs, the LM foil on top of the cell performs only slightly better than a flat anti-reflective coating. However, under diffuse illumination, the benefits of the LM foil are much greater. Finally, we calculate the energy yield for the different device designs, based on true weather data for three different locations throughout the year, taking direct as well as diffuse illumination fully into account. The results further confirm the benefits of front-side texture, even more for BIPV applications. Overall, devices built on a both-side textured silicon wafer perform best. However, we show that devices with textured LM foils on the cell's front-side are a highly efficient alternative.
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            Grain Growth Mechanism of Heavily Phosphorus-Implanted Polycrystalline Silicon

            Yasuo Wada (1978)
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              Relation between substrate surface morphology and microcrystalline silicon solar cell performance

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                Author and article information

                Journal
                epjpv
                https://www.epj-pv.org
                EPJ Photovoltaics
                EPJ Photovolt.
                EDP Sciences
                2105-0716
                18 October 2022
                18 October 2022
                2022
                : 13
                : ( publisher-idID: epjpv/2022/01 )
                : 23
                Affiliations
                Photovoltaic Materials and Devices, TU Delft, Mekelweg 4, , Delft 2628CD, The Netherlands,
                Author notes
                Article
                pv220031
                10.1051/epjpv/2022021
                ba21ac37-8c88-495a-b07e-bfc3d112eef7
                © T. de Vrijer et al., Published by EDP Sciences, 2022

                This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

                History
                : 16 May 2022
                : 16 August 2022
                : 19 September 2022
                Page count
                Figures: 12, Tables: 0, Equations: 3, References: 38, Pages: 11
                Funding
                Funded by: Netherlands Organization for Scientific Research (NWO)
                Award ID: Solar to Products grant
                Funded by: Shell International Exploration & Production
                Award ID: Dense Energy Carriers Program
                Categories
                High Efficiency Materials and Devices - New concepts
                Regular Article
                Custom metadata
                EPJ Photovolt. 13, 23 (2022)
                yes
                2022
                2022
                2022

                Sustainable & Green chemistry,Materials technology,Semiconductors,Materials for energy,Technical & Applied physics,Renewable energy
                random smooth texture,Crystalline silicon texturing,thin film silicon,periodic honeycomb texture,optical scattering yield

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