国际学生入学条件
The Graduate School recommends applicants have at least a 3.0 GPA or B average when applying.
For transcripts from schools abroad, the UMBC Graduate School will accept official WES (World Education Services) ICAP Course-by-Course evaluations but note that these evaluations are not required.
Students who are unable to meet the minimum GPA standards may still be admitted to graduate study by demonstrating outstanding performance on one or more of the graduate aptitude tests or by providing letters of recommendation from evaluators who can speak to the applicant's performance as a student or in a professional capacity.
Standards for admission to a doctoral program are generally higher than those for admission to a master's program. The terms of this admission are based on specific recommendations made by the applicant's department in conjunction with the Graduate School.
minimum TOEFL score of 80
TOEFL Essentials test is 8.5. Our ETS institution code is 5835.
The IELTS minimum is a total score of 6.5 for students wishing to study at UMBC.
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雅思考试总分
6.5
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雅思考试指南
- 雅思总分:6.5
- 托福网考总分:80
- 托福笔试总分:160
- 其他语言考试:DuoLingo scores - minimum score required by the Graduate School is 115.,A minimum score of 53 is required on the PTE Academic test.
CRICOS代码:
申请截止日期: 请与IDP顾问联系以获取详细信息。
课程简介
CM小组的研究兴趣是多种多样的,反映了物理学中最大的子领域的广度。当前,核心优势围绕了解纳米结构金属,半导体和有机材料的基本物理学,包括它们的沉积和形成机理,表面,界面和结构特性,超快和非线性光学特性以及在量子信息科学中的应用。这些研究的主要灵感是这些材料在下一代电子,光电,光学和纳米光学器件(包括量子器件)中的潜力。部门纳米制造设施和NanoImaging设施支持各个实验室的研究工作。有关更多详细信息,请参见各个学院的研究页面。
The research interests of the CM group are diverse, reflecting the breadth of the largest subfield in physics. Currently, the core strengths revolve around understanding the fundamental physics of nanostructured metal, semiconductor, and organic materials, including their deposition and formation mechanisms, surface, interface, and structural properties, ultrafast and nonlinear optical properties, theoretical investigation of materials using a variety of computational tools ranging from Density Functional Theory to Quantum Monte Carlo and applications in quantum information science. These studies are primarily inspired by the potential uses of these materials in the design and fabrication of next-generation nanoelectronic, opto-electronic, and optical and nano-optical devices, including quantum devices.
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