邹赫麟

个人信息Personal Information

教授

博士生导师

硕士生导师

性别:男

毕业院校:威尔大学

学位:博士

所在单位:机械工程学院

学科:微机电工程

办公地点:机械工程学院2号楼214-2

联系方式:办公电话:0411-84709754

电子邮箱:zouhl@dlut.edu.cn

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Two dimensional PMMA nanofluidic device fabricated by hot embossing and oxygen plasma assisted thermal bonding methods

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论文类型:期刊论文

发表时间:2015-05-29

发表刊物:NANOTECHNOLOGY

收录刊物:SCIE、EI、PubMed、Scopus

卷号:26

期号:21

页面范围:215302

ISSN号:0957-4484

关键字:2D PMMA nanochannels; hot embossing; oxygen plasma assisted thermal bonding; numerical simulation; dimension loss evaluating method

摘要:A method for obtaining a low-cost and high-replication precision two-dimensional (2D) nanofluidic device with a polymethyl methacrylate (PMMA) sheet is proposed. To improve the replication precision of the 2D PMMA nanochannels during the hot embossing process, the deformation of the PMMA sheet was analyzed by a numerical simulation method. The constants of the generalized Maxwell model used in the numerical simulation were calculated by experimental compressive creep curves based on previously established fitting formula. With optimized process parameters, 176 nm-wide and 180 nm-deep nanochannels were successfully replicated into the PMMA sheet with a replication precision of 98.2%. To thermal bond the 2D PMMA nanochannels with high bonding strength and low dimensional loss, the parameters of the oxygen plasma treatment and thermal bonding process were optimized. In order to measure the dimensional loss of 2D nanochannels after thermal bonding, a dimension loss evaluating method based on the nanoindentation experiments was proposed. According to the dimension loss evaluating method, the total dimensional loss of 2D nanochannels was 6 nm and 21 nm in width and depth, respectively. The tensile bonding strength of the 2D PMMA nanofluidic device was 0.57 MPa. The fluorescence images demonstrate that there was no blocking or leakage over the entire microchannels and nanochannels.