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Involving Students in a Collaborative Project To Help DiscoverudInexpensive, Stable Materials for Solar Photoelectrolysis

机译:让学生参与一个合作项目以帮助发现 ud廉价,稳定的太阳能光电解材料

摘要

In general, laboratory experiments focus on traditional chemical disciplines. While this approach allows students the ability to learn and explore fundamental concepts in a specific area, it does not always encourage students to explore interdisciplinary science. Often little transfer of knowledge from one area to another is observed, as students are given step-by-step instructions on how to complete their task with little involvement or problem solving. Herein, we provide an example of a real-time research laboratory experiment that is aimed at individual’s exploration and development, with the scientific goal of discovering inexpensive, stable oxide semiconductors that can efficiently photoelectrolyze water to a useable fuel, hydrogen. Students create unique metal oxide semiconductors combinations, scan the samples for photoactivity using a purchased scan station, and report their findings to a collaborative database. A distinctive feature of the project is its ability to be implemented in a variety of educational levels with a breadth and depth of material covered accordingly. Currently, kits are being used in secondary education classrooms, at undergraduate institutions, or as outreach activities. The project provides students and scientists from different disciplines the opportunity to collaborate in research pertaining to clean energy and the global energy crisis.
机译:通常,实验室实验集中于传统化学学科。尽管这种方法使学生能够学习和探索特定领域中的基本概念,但它并不总是鼓励学生探索跨学科科学。通常会观察到很少的知识从一个领域到另一个领域的转移,因为会逐步指导学生如何在很少参与或解决问题的情况下完成任务。本文中,我们提供了一个针对个人的勘探和开发的实时研究实验室实验的示例,其科学目标是发现可以有效地将水光电解为可用燃料氢的廉价,稳定的氧化物半导体。学生将创建独特的金属氧化物半导体组合,使用购买的扫描仪扫描样品的光敏性,并将发现的结果报告给协作数据库。该项目的一个显着特征是它可以在各种教育水平上实施的能力,并相应地涵盖了材料的广度和深度。目前,这些工具包正用于中学教育教室,大学机构或作为外展活动。该项目为来自不同学科的学生和科学家提供了合作开展有关清洁能源和全球能源危机的研究的机会。

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