色谱 ›› 2026, Vol. 44 ›› Issue (7): 834-842.DOI: 10.3724/SP.J.1123.2025.06022

• 教学研究 • 上一篇    

基于微型质谱仪的实验教学实践创新:从质谱原理到测试应用

李兰1, 洪杰2, 余新慧2, 高培峰1, 翟雁冰3,*()   

  1. 1.北京理工大学资产与实验室管理处,北京 100081
    2.昆山聂尔精密仪器有限公司,江苏 苏州 215316
    3.北京理工大学医学技术学院,北京 100081
  • 收稿日期:2025-06-19 出版日期:2026-07-08 发布日期:2026-07-09
  • 通讯作者: *Tel:010-81381283,E-mail:zhaiyanbing@bit.edu.cn.
  • 基金资助:
    国家自然科学基金面上项目(22474008)

Innovation in experimental teaching practice based on miniature mass spectrometer: from mass spectrometry principles to applications

LI Lan1, HONG Jie2, YU Xinhui2, GAO Peifeng1, ZHAI Yanbing3,*()   

  1. 1.Office of National Assets & Laboratory Management,Beijing Institute of Technology,Beijing 100081,China
    2.Kunshan Nier Precision Instrumentation Inc. ,Suzhou 215316,China
    3.School of Medical Technology,Beijing Institute of Technology,Beijing 100081,China
  • Received:2025-06-19 Online:2026-07-08 Published:2026-07-09
  • Supported by:
    General Program of the National Natural Science Foundation of China(22474008)

摘要:

传统质谱教学因商业化质谱仪体积庞大、操作复杂、成本高昂,普遍存在“重理论、轻实践”的困境。微型质谱仪凭借体积小、操作简便成为理想的替代教学工具。它采用大气压电离源降低样品前处理要求;通过线性离子阱实现质谱仪体积的缩小但又不损失功能;结合微型离子漏斗与大气压连续进样接口保障了分析的高效稳定。微型质谱仪具备串联质谱(MS n )分析功能,足以满足教学中有机物结构解析与复杂样品快速检测需求。本课程以提升学生知识、能力、素养的教学目标为导向,通过仪器拆解、参数优化和实际应用案例,设计了以下教学实验:通过仪器模块化拆解认知结构,结合质量轴校准、全扫描分析,帮助学生掌握仪器基本操作;选择离子扫描和串联质谱分析,深度训练学生质谱数据解析与结构推导能力;融入西药成分确证、血药检测和中药多组分筛查等实际案例,培养学生运用质谱解决复杂实际问题的科研素养与创新能力。通过构建高效合理的教学计划,推动该实验教学课程在计划内教学和开放实验教学等课程中稳步落地,并通过教学反思和后续课程的迭代优化,强化学生的科研思维与实践能力,为其适应现代科研与产业需求奠定了坚实基础,也显著提升了仪器分析课程的实践性与创新性。

关键词: 实验教学, 微型质谱仪, 线性离子阱, 血药检测, 谱库筛查

Abstract:

Mass spectrometer is an important component of the instrumental analysis courses in higher education. However, conventional commercial mass spectrometers usually lead to an imbalance between theory and practice in teaching, because of their characteristics of large size, high price and complicated operations, which makes it difficult to establish a direct link between instrument structure and detection principles. The miniature mass spectrometer shares the same core principles as commercial mass spectrometers. Equipped with an atmospheric pressure ionization (API) source, it significantly reduces sample preparation requirements, and enables rapid analysis of complex samples. The unique capability of the linear ion trap mass analyzer to scan, store, and eject ions enables a dramatic reduction in instrument size. The miniature ion funnel transmission technology and atmospheric pressure continuous sampling interface ensure high repeatability and rapid analysis, allowing compatibility with various atmospheric pressure ion sources for diverse sample types. In terms of performance, the miniature mass spectrometer has a mass-to-charge (m/z) scan range of 50-2 000, and supports tandem mass spectrometry (MS), enabling structural analysis of common organic compounds and rapid testing of complex samples. Therefore, the miniature mass spectrometer becomes an ideal tool for experimental teaching. This teaching course has developed a “three-dimensional integrated” teaching system aimed at enhancing students’ knowledge, abilities, and literacy. Firstly, students disassemble key components of the instrument such as the ion source, ion funnel and trap to understand how they work together to achieve sample ionization, transmission, and acquisition. Mass calibration and full scan test help students master the basic operation. By adjusting the radio frequency (RF) voltage parameters, students could observe the impact of different parameters on the experimental results. Secondly, selected ion monitoring and tandem MS analysis help enhance students’ data analysis skills and further develop their abilities in structural confirmation of compounds with MS. Lastly, pharmaceutical ingredient analysis, blood drug testing and multi-component screening of traditional Chinese medicine comprehensively demonstrate the wide applications of MS in scientific research and daily life, aiming to cultivate students’ research thinking and problem-solving abilities. The gradient experiments (from basic calibration to advanced MS n ) combined with practical applications have effectively driven the implementation of the offline teaching course. The suggested experimental class hours are 12, covering pre-class preparation, in-class hands-on practice, data acquisition, and post-class summary. Practice has demonstrated that this integrated “structure-principle-application” teaching model effectively bridges the knowledge chain from theoretical learning to practical application, and significantly enhances students’ innovative thinking and ability to solve complex analytical problems, better preparing them to meet the requirements of modern scientific research and industrial applications. Additionally, instructional reflections and feasible teaching optimizations are necessary based on the teaching effects and feedback. This comprehensive learning experience provides students with invaluable inspiration and guidance, and lays a solid foundation for them to enter the field of scientific research, having successfully cultivated talent with practical abilities and innovation literacy, and achieving the intended teaching objectives.

Key words: experimental teaching, miniature mass spectrometer, linear ion trap, blood drug determination, library screening

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