大学化学

所属专题: 面向“双碳”战略的能源化学教育

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面向“双碳”目标的跨学科能源化学暑期实践教学体系构建与实践

孙延娜, 阚媛媛, 徐化君, 高珂   

  1. 山东大学化学与化工学院, 前沿化学研究院, 山东 青岛 266237
  • 收稿日期:2026-07-29 录用日期:2026-09-01
  • 通讯作者: 孙延娜, 高珂 E-mail:ynsun@sdu.edu.cn;kegao@sdu.edu.cn Yanna Sun, Ke Gao
  • 基金资助:
    山东省高等学校青创科技支持计划(2025KJG028);山东省杰出青年科学基金(ZR2024JQ005)

Constructing and implementing an interdisciplinary summer practice teaching system for energy chemistry toward the “Dual Carbon” goal

Yanna Sun, Yuanyuan Kan, Huajun Xu, Ke Gao   

  1. Institute of Frontier Chemistry, College of Chemistry and Chemical Engineering, Shandong University, Qingdao 266237, Shandong Province, China
  • Received:2026-07-29 Accepted:2026-09-01
  • Contact: Yanna Sun, Ke Gao E-mail:ynsun@sdu.edu.cn;kegao@sdu.edu.cn

摘要: 针对“双碳”战略下新能源人才跨学科训练不足、前沿科研向教学转化迟滞的问题,本文以山东大学“暑期新能源科技探秘——薄如幻翼:柔性有机光电器件的构筑”项目为例,践行“教研同频、四维贯通”的育人理念,探索了能源化学与柔性有机光电教研深度融合的实践教学新模式。课程立足“化学能-光电能高效转换”交叉属性,构建“基础知识-材料合成表征-器件加工组装-性能评估分析”四位一体渐进式教学体系,采用案例启发与小组协同,引导学生贯通完成材料合成、设备操作及超薄柔性器件制备测试全过程,并建立“知识掌握(35%)+能力实践(50%)+创新素养(15%)”过程性多元考评机制。实践表明,学生核心概念理解正确率由35%提升至95%,实践与报告优良率达94%,跨学科问题分析与综合创新能力显著增强,为同类院校相关专业的实验教学改革提供了有益借鉴。

关键词: 双碳战略, 能源化学, 有机太阳能电池, 教研融合, 教学改革

Abstract: To address the insufficient interdisciplinary training of new energy talents and the delayed translation of cutting-edge research into teaching under the “Dual Carbon” strategy, this paper presents a case study of the summer program “Summer New Energy Science and Technology Exploration—As Thin as Phantom Wings: Construction of Flexible Organic Optoelectronic Devices” at Shandong University. Guided by the educational philosophy of “synchronized research and teaching, four-dimensional integration”, the program explores a novel practical teaching model that deeply integrates energy chemistry with flexible organic optoelectronic research and pedagogy. Grounded in the interdisciplinary nature of “efficient chemical-to-photoelectric energy conversion”, the course establishes a four-in-one progressive teaching system encompassing fundamental knowledge, material synthesis and characterization, device fabrication and assembly, and performance evaluation and analysis. By employing case-based inspiration and group collaboration, the course guides students through the entire process of material synthesis, equipment operation, and the fabrication and testing of ultrathin flexible devices. A process-oriented multidimensional assessment mechanism is also established, comprising knowledge mastery (35%), practical skills (50%), and innovative literacy (15%). Practice shows that students’ accuracy in understanding core concepts increased from 35% to 95%, and the proportion of students rated excellent in practical work and reports reached 94%. Their interdisciplinary problem analysis and comprehensive innovation abilities were significantly enhanced, providing a useful reference for experimental teaching reform in related disciplines at peer institutions.

Key words: Dual Carbon Strategy, Energy chemistry, Organic solar cells, Integration of teaching and research, Teaching reform