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بهینه سازی فیلتر رنگی پلاسمونیکی برای حسگر تصویر برداری | ||
الکترومغناطیس کاربردی | ||
مقاله 12، دوره 7، شماره 2 - شماره پیاپی 19، اسفند 1398، صفحه 105-112 اصل مقاله (1.14 M) | ||
نوع مقاله: مقاله پژوهشی | ||
نویسندگان | ||
کاوه عیوضی بیله سوار1؛ محمد عظیم کرمی* 2 | ||
1دانشجوی ارشد برق الکترونیک دانشگاه علم وصنعت ایران | ||
2دانشیار دانشگاه علم وصنعت | ||
تاریخ دریافت: 10 مهر 1397، تاریخ بازنگری: 13 دی 1398، تاریخ پذیرش: 14 بهمن 1398 | ||
چکیده | ||
در این مقاله، فیلتر رنگی پلاسمونیکی شیاردار پشت و روی چشم گاوی برای کاربرد در حسگرهای تصویربرداری استاندارد سیماس ارائهشده است. فیلتر پلاسمونیکی فیلم نازک ارائهشده از جنس نقره بوده و به کمک بهینهسازی الگوریتم ازدحام ذرات با اصلاح پارامترهای دوره تناوب، زمان وظیفه، ضخامت بدنه، ارتفاع لایه شبکهای و قطر روزنه برای تصویربرداری مادونقرمز بهینهسازی شده است. این فیلتر پلاسمونیکی برای طولموج مرکزی nm 835 طراحیشده است که دارای بیشینه بازدهی انتقال نور 8/36% و پهنا در نصف مقدار بیشینه nm 110 میباشد. از مزیتهای این فیلتر میتوان به قابلیت پیادهسازی با هزینه پایین، نزدیک بودن به ناحیه حساس به نور، کاهش همشنوایی و عدم استفاده از پلیمرهای حساس به دما که برای کاربردهای با شرایط دمایی سخت مناسب است اشاره کرد. همچنین با تجزیه و تحلیل عملکرد این فیلتر پلاسمونیکی و مقایسه آن با فیلترهای نوری دارای طولموج مرکزی مشابه، به بررسی ویژگی پلاسمون سطحی با توزیع شدت میدان الکتریکی محلی پرداخته شده است. | ||
کلیدواژهها | ||
فیلتر پلاسمونیکی؛ الگوریتم ازدحام ذرات؛ تصویر برداری مادون قرمز | ||
عنوان مقاله [English] | ||
Optimizing Plasmonic Color Filter for Imaging Sensor | ||
نویسندگان [English] | ||
K. Eyvazi1؛ M. A. Karami2 | ||
چکیده [English] | ||
In this paper, a double-side bull’s eye plasmonic color filter used in complementary metal oxide semiconductor (CMOS) based standard imaging sensors is presented. The thin-film filter is silver-made and optimized by using a particle swarm algorithm in order to modify the corrugation period, duty cycle, film thickness, grating height and aperture diameter for infrared imaging. The filter is designed for central wavelength 835 nm, having the maximum transmittance of 38.6 % and the full width at half maximum (FWHM) of 110 nm. Inexpensive implementation, proximity to the sensitive region, reduced crosstalk and independence from temperature-sensitive polymers, are some of the advantages of this filter, making it suitable for tough temperature conditions. Moreover, using functional analysis of this plasmonic filter and comparing it to the optical filters with similar central wavelength has led us to the investigation of surface plasmon features under a local electric field intensity distribution. | ||
کلیدواژهها [English] | ||
Plasmonic Filter, Particle Swarm Algorithm, Infrared Imaging | ||
مراجع | ||
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