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Jeonggyu Hwang

Publications and source records attributed to Jeonggyu Hwang.

3 recordsLinked to original sources

Estimation of Solar Spectral Irradiance Using Meteorological Data and Analysis of Optimal Conditions for Solar Power Generation

This study proposes an approximate model to estimate the solar radiation spectrum intensity in Seoul, Republic of Korea, for the year 2024, aiming to analyze optimal conditions related to energy generation. Since the solar radiation spectrum varies with atmospheric conditions, accurately predicting it typically requires complex spectral radiation models. However, such models entail high computational costs, hindering real-time application. To address this, this study introduces a simplified approximation model using only direct normal irradiance (DNI) among real-time meteorological elements, employing linear scaling of the standard spectrum (ASTM G-173). This model first estimates DNI using global horizontal irradiance (GHI) and solar position information (such as zenith angle), then linearly adjusts the standard spectrum to compute real-time spectrum intensity. The model approximates realistic DNI values by correcting various meteorological parameters, including zenith angle, cloud cover, and visibility. The analysis shows that GHI exhibits stable seasonal patterns, peaking in summer and minimizing in winter. In contrast, DNI demonstrates significant temporal variability and frequent abnormal peaks (e.g., exceeding 9,000 W/m^2), highlighting the importance of data refinement and anomaly detection in predicting energy generation. In conclusion, GHI is suitable for general photovoltaic analyses, whereas DNI is crucial for direct-beam sensitive systems like concentrated solar power (CSP), requiring meticulous data quality management. Future research should focus on identifying the causes of DNI anomalies and developing real-time quality control algorithms.

eess.SP↗

Theoretical Analysis of Doping Concentration Gradients on Solar Cell Performance

Solar cells are crucial for addressing global energy issues, with research focused on improving their efficiency. This study examines the impact of doping concentration gradients on solar cell performance. Doping involves adding impurities to a semiconductor, affecting charge carrier mobility and recombination rates. The spatial distribution of these dopants, known as the doping concentration gradient, is essential for optimizing solar cell characteristics. This research theoretically analyzes the effects of doping gradients on potential differences, electric fields, and recombination rates in semiconductors. We explore how doping creates potential differences and electric fields that guide charge carriers and enhance mobility. Additionally, we study how doping gradients can control recombination mechanisms, thereby improving the electrical performance of solar cells. Using modeling and simulation techniques, we derive the optimal doping gradient to maximize efficiency. Our findings suggest that an optimal doping gradient minimizes recombination rates and enhances charge carrier mobility, significantly improving solar cell performance. The study proposes that graded doping concentrations could particularly benefit multi-junction solar cells by allowing better absorption and conversion of various light spectra. However, precise fabrication control and long-term stability assessments are needed. This study highlights the potential of doping concentration gradients to advance solar cell technology, paving the way for more sustainable and cost-effective solar energy solutions.

physics.app-ph↗

Exploring the Theoretical Limits of Efficiency in Multilayer Solar Cells

Photovoltaic materials are recognized for their potential as sustainable energy sources that enable the conversion between light and electrical energy. However, solar cells have been unable to surpass the theoretical limit of 32%, known as the Shockley-Queisser limit, and face challenges in effectively utilizing the broad spectrum of sunlight. To address this issue, extensive research is being conducted on multi-junction solar cells, which employ a layered structure comprising materials with varying bandgaps to more effectively harness the wide spectrum of sunlight. This study calculates the theoretical limit of these multi-junction solar cells and identifies optimal bandgap combinations, exploring new possibilities for photovoltaic devices and suggesting directions for technological advancement. The performance saw a 31% improvement when moving from a single layer to two layers, and a 12% improvement from two layers to three, with the average wavelength situated in the late 800nm range. The wavelength of the bottom layer increased by about 200nm, and that of the second layer by about 150nm. Our findings present new opportunities to surpass the current limitations of solar cell technology, potentially enhancing the economic feasibility and utility of solar energy as a sustainable source.

physics.app-ph↗