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KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal

A novel functional KH(2)PO(4) (KDP) aqueous solution-in-oil (KDP aq/O) microemulsion system for KDP crystal ultra-precision chemical-mechanical polishing (CMP) was prepared. The system, which consisted of decanol, Triton X-100, and KH(2)PO(4) aqueous solution, was available at room temperature. The...

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Detalles Bibliográficos
Autores principales: Dong, Hui, Wang, Lili, Gao, Wei, Li, Xiaoyuan, Wang, Chao, Ji, Fang, Pan, Jinlong, Wang, Baorui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5503384/
https://www.ncbi.nlm.nih.gov/pubmed/28772632
http://dx.doi.org/10.3390/ma10030271
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author Dong, Hui
Wang, Lili
Gao, Wei
Li, Xiaoyuan
Wang, Chao
Ji, Fang
Pan, Jinlong
Wang, Baorui
author_facet Dong, Hui
Wang, Lili
Gao, Wei
Li, Xiaoyuan
Wang, Chao
Ji, Fang
Pan, Jinlong
Wang, Baorui
author_sort Dong, Hui
collection PubMed
description A novel functional KH(2)PO(4) (KDP) aqueous solution-in-oil (KDP aq/O) microemulsion system for KDP crystal ultra-precision chemical-mechanical polishing (CMP) was prepared. The system, which consisted of decanol, Triton X-100, and KH(2)PO(4) aqueous solution, was available at room temperature. The functional KDP aq/O microemulsion system was systematically studied and applied as polishing solution to KDP CMP technology. In this study, a controlled deliquescent mechanism was proposed for KDP polishing with the KDP aq/O microemulsion. KDP aqueous solution, the chemical etchant in the polishing process, was caged into the micelles in the microemulsion, leading to a limitation of the reaction between the KDP crystal and KDP aqueous solution only if the microemulsion was deformed under the effect of the external force. Based on the interface reaction dynamics, KDP aqueous solutions with different concentrations (c(KDP)) were applied to replace water in the traditional water-in-oil (W/O) microemulsion. The practicability of the controlled deliquescent mechanism was proved by the decreasing material removal rate (MRR) with the increasing of the c(KDP). As a result, the corrosion pits on the KDP surface were avoided to some degree. Moreover, the roughnesses of KDP with KDP aq/O microemulsion (c(KDP) was changed from 10 mM to 100 mM) as polishing solutions were smaller than that with the W/O microemulsion. The smallest surface root-mean-square roughness of 1.5 nm was obtained at a 30 mmol/L KDP aq solution, because of the most appropriate deliquescent rate and MRR.
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spelling pubmed-55033842017-07-28 KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal Dong, Hui Wang, Lili Gao, Wei Li, Xiaoyuan Wang, Chao Ji, Fang Pan, Jinlong Wang, Baorui Materials (Basel) Article A novel functional KH(2)PO(4) (KDP) aqueous solution-in-oil (KDP aq/O) microemulsion system for KDP crystal ultra-precision chemical-mechanical polishing (CMP) was prepared. The system, which consisted of decanol, Triton X-100, and KH(2)PO(4) aqueous solution, was available at room temperature. The functional KDP aq/O microemulsion system was systematically studied and applied as polishing solution to KDP CMP technology. In this study, a controlled deliquescent mechanism was proposed for KDP polishing with the KDP aq/O microemulsion. KDP aqueous solution, the chemical etchant in the polishing process, was caged into the micelles in the microemulsion, leading to a limitation of the reaction between the KDP crystal and KDP aqueous solution only if the microemulsion was deformed under the effect of the external force. Based on the interface reaction dynamics, KDP aqueous solutions with different concentrations (c(KDP)) were applied to replace water in the traditional water-in-oil (W/O) microemulsion. The practicability of the controlled deliquescent mechanism was proved by the decreasing material removal rate (MRR) with the increasing of the c(KDP). As a result, the corrosion pits on the KDP surface were avoided to some degree. Moreover, the roughnesses of KDP with KDP aq/O microemulsion (c(KDP) was changed from 10 mM to 100 mM) as polishing solutions were smaller than that with the W/O microemulsion. The smallest surface root-mean-square roughness of 1.5 nm was obtained at a 30 mmol/L KDP aq solution, because of the most appropriate deliquescent rate and MRR. MDPI 2017-03-09 /pmc/articles/PMC5503384/ /pubmed/28772632 http://dx.doi.org/10.3390/ma10030271 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dong, Hui
Wang, Lili
Gao, Wei
Li, Xiaoyuan
Wang, Chao
Ji, Fang
Pan, Jinlong
Wang, Baorui
KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title_full KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title_fullStr KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title_full_unstemmed KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title_short KDP Aqueous Solution-in-Oil Microemulsion for Ultra-Precision Chemical-Mechanical Polishing of KDP Crystal
title_sort kdp aqueous solution-in-oil microemulsion for ultra-precision chemical-mechanical polishing of kdp crystal
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5503384/
https://www.ncbi.nlm.nih.gov/pubmed/28772632
http://dx.doi.org/10.3390/ma10030271
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