国际学生入学条件
Official transcript(s) are required from all undergraduate and graduate schools you have attended. For reviewing purposes, electronic copies of transcript(s) can be uploaded through the online application system to meet the application requirements. The online application has an area to include your Research Experience such as articles, publications, or creative work. In addition, there is an area to upload your Resume or Curriculum Vitae (optional). A minimum of three (3) letters of recommendation are required. Generally these letters are written by faculty who are familiar with your work and can address your potential for success in graduate school and beyond. Once listed, recommendation requests are sent via email to the recommender after the applicant prompts the application system to do so. Students must score at least 90 on the iBT (internet-based) TOEFL, at least 620 on the paper-based TOEFL, or at least 250 on the computer-based TOEFL. For students who choose to take the IELTS in lieu of TOEFL, the minimum score is 7.
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雅思考试总分
7.0
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雅思考试指南
- 雅思总分:7
- 托福网考总分:90
- 托福笔试总分:620
- 其他语言考试:NA
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申请截止日期: 请与IDP顾问联系以获取详细信息。
课程简介
In the Department of Chemistry at Rice, we bring together experimental and theoretical physical chemists whose expertise is to develop new tools to look at nanoscale interfaces. Our faculty aims to overcome one of the most difficult challenges in chemistry: to measure and model interfacial structure and dynamics in situ, where proteins, water, ions, and energy exchange outside equilibrium descriptions. Interfacial dynamics play a crucial role in materials and biological functionality. Viral cell entry, catalysis, adhesive materials, antifouling coatings, and separations science all rely on nanoscale interfacial dynamics. Perhaps disease inception itself stems from protein aggregation at membrane interfaces. At the same time, interfaces are quite literally buried from view. Our goals are to build an understanding, both experimental and theoretical, of dynamic and hybrid interfaces at which both spatial and temporal heterogeneity on the single molecule scale drive macroscale observables, and to provide new ways to see and explore new frontiers through spectroscopic imaging at the multiple time and length scales necessary to achieve transformative improvements in chemistry, materials science, and eventually medicine.
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