MRI: Development of an in-situ controlled Atomic Layer Deposition Tool (iCALD) for the Preparation of 3D Photonic Materials with Ultrahigh Aspect Ratios
MRI: Development of an in-situ controlled Atomic Layer Deposition Tool (iCALD) for the Preparation of 3D Photonic Materials with Ultrahigh Aspect Ratios
批准号:
1828430
负责人:
Tino Hofmann
金额:
$44.05万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-10-01 至 2023-09-30
中文摘要
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英文摘要
Optical materials composed of three-dimensional structures with ultra-high aspect ratios and coated with ultra-thin conformal layers enable a vast array of active and passive devices and components operating in the infrared and terahertz spectral range. Applications for these materials include environmental sensors with unprecedented sensitivity and multifunctional coatings to enhance three-dimensional micro-optical structures. The proposed in-situ controlled, atomic layer deposition (iCALD) instrument which will be developed at the University of North Carolina (UNC) at Charlotte and integrated in the cleanroom facility of the Center for Optoelectronics and Optical Communications will enable the fabrication of these optical materials. The ability to conformally coat structures with virtually arbitrary geometries enabled by the iCALD instrument will transform the use and scope of materials, structures, and optical devices, synthesized and fabricated using the existing cleanroom facilities. The iCALD instrument will enable research by over 40 faculty members from five departments across the UNC Charlotte campus, their students, and national and international collaborators. In addition, this unique instrument will be accessible for research organized in two NSF-funded Industry/University Cooperative Research Centers (I/UCRCs), the Center for Metamaterials and the Center for Freeform Optics. Through these Centers the iCALD development will lead to new opportunities for industry funded research projects and directly benefit more than 30 industry partners nationwide. The Optics Center together with the two I/UCRCs create an environment where the developed iCALD instrument will have a very significant impact due to its potential for commercialization of research results, along with enabling advanced training of MS and PhD students.The project aims to develop this unique iCALD instrument for the synthesis of three-dimensional photonic materials. This new class of materials is composed of three-dimensional structures with ultra-high aspect ratios, coated with ultra-thin conformal layers. The preparation of conformal coatings for such structures and surfaces using atomic layer deposition (ALD) techniques requires the precise control of numerous crucial ALD process parameters to ensure quality, thickness, and conformity of the ultra-thin films. It is therefore imperative to control the ALD process parameters using layer thickness and conformity information obtained from non-contact, in-situ, measurement techniques. The iCALD instrument will allow in-situ monitoring and control of the layer-by-layer deposition process by using an innovative in-situ Mueller matrix ellipsometer operating at infrared wavelengths. The iCALD instrument will enable the accurate control of ultra-thin coatings, with sub-nanometer accuracy, deposited onto structures with feature sizes on the order of several hundred nanometers. The iCALD instrument thereby will allow the fabrication of novel infrared and terahertz photonic materials with unprecedented accuracy. Based on these novel three-dimensional photonic materials, a vast array of active and passive devices and components operating in the infrared and terahertz spectral range can be made. In addition, the iCALD instrument will provide valuable insights about layer-by-layer deposition onto structures with arbitrary geometries, which have not been demonstrated experimentally yet. The controlled deposition and in-situ monitoring capabilities developed by this project will further expand crucial understanding of the atomic layer deposition process required for the fabrication of structures with ultra-high aspect ratios. Significant improvement of the optical material properties of three-dimensional photonic materials enabled by this instrument is anticipated.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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DOI:
10.1117/12.2658707
发表时间:
2023-03
期刊:
影响因子:
--
作者:
[V. Stinson;Nuren Shuchi;Micheal McLamb;G. Boreman;T. Hofmann]
通讯作者:
V. Stinson;Nuren Shuchi;Micheal McLamb;G. Boreman;T. Hofmann
DOI:
10.3390/opt3010009
发表时间:
2022-03
期刊:
Optics
影响因子:
--
作者:
[Micheal McLamb;Seran Park;V. Stinson;Yanzeng Li;Nuren Shuchi;G. Boreman;T. Hofmann]
通讯作者:
Micheal McLamb;Seran Park;V. Stinson;Yanzeng Li;Nuren Shuchi;G. Boreman;T. Hofmann
DOI:
10.3390/opt4020021
发表时间:
2023-06-01
期刊:
OPTICS
影响因子:
--
作者:
[Stinson, Victoria Paige, Shuchi, Nuren, Kim, Young-Ki]
通讯作者:
Kim, Young-Ki
Mechanical Tuning of Diffractive Gratings Compatible with Two-Photon Polymerization
与双光子聚合兼容的衍射光栅的机械调谐
DOI:
10.1109/rapid54473.2023.10264774
发表时间:
2023
期刊:
IEEE
影响因子:
--
作者:
[Stinson, V. Paige, Subash, Uma, Poutous, Menelaos K., Hofmann, Tino]
通讯作者:
Hofmann, Tino
Frequency Tuning of Perfect Absorbing Metamaterial using a Thin Conformal Dielectric
使用薄共形电介质进行完美吸收超材料的频率调谐
DOI:
10.1109/rapid54472.2022.9911549
发表时间:
2022
期刊:
IEEE Research and Applications of Photonics In Defense Conference (RAPID
影响因子:
--
作者:
[McLamb, Micheal, Stinson, V. Paige, Shuchi, Nuren, Boreman, Glenn D., Hofmann, Tino]
通讯作者:
Hofmann, Tino
共 11 条
国内基金
海外基金
水稻边界发育缺陷突变体abnormal boundary development(abd)的基因克隆与功能分析
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批准号:32070202
-
项目类别:面上项目
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资助金额:58.0万元
-
批准年份:2020
-
负责人:汪泉
-
依托单位:
Development of a Linear Stochastic Model for Wind Field Reconstruction from Limited Measurement Data
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批准号:--
-
项目类别:--
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资助金额:40万元
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批准年份:2020
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负责人:Vikrant Gupta
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依托单位: