叶绿素荧光测量过程、仪器和方法综述

Jelena Vlaovic, J. Balen, K. Grgic, D. Zagar, V. Galić, D. Šimić
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引用次数: 2

摘要

光合作用的过程意味着光在光合生物中将光转化为化学能。利用到达植物叶片的光进行化学能生产的程序之一是通过叶绿素(CF)分子,使生化过程成为可能。叶绿素荧光测量技术是用来评价植物光合性能的,其主要原理是基于光能分布。虽然作物轮作和施肥等农业实践可以监测和影响植物的生理状态,但在农业生态圈中可能会发生各种偏差。通过最大荧光等参数监测荧光瞬态,并测量不同的暗适应荧光状态。荧光通常使用荧光计测量,如袖珍植物效率分析仪(PEA)和便携式PEA。新颖的解决方案包括卫星观测和物联网解决方案。基于单个传感器节点的成本效益解决方案提供的精度较低,而传感器网络获得的结果与参考数据相当。本文简要介绍了叶绿素荧光测量的传感器、方法和算法,并指出了未来工作的开放性问题和研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Overview of Chlorophyll Fluorescence Measurement Process, Meters and Methods
The process of photosynthesis implies the transformation of light into chemical energy in photosynthetic organisms. One of the procedures of utilizing the light reaching the plant leaf for chemical energy production is via the chlorophyll (CF) molecules that enable biochemical processes. Chlorophyll fluorescence measurement technique is used to assess the photosynthetic performance of plants and the main principle is based on light energy distribution. Although the plant physiological status is monitored and influenced with agricultural practices like crop rotation and fertilization, various deviations might happen in the agro-ecosphere. Fluorescence transient is monitored through different parameters like maximum fluorescence and different states of dark-adapted fluorescence are measured. Fluorescence is commonly measured using fluorometers like Pocket plant efficiency analyzer (PEA) and Handy PEA. Novel solutions include satellite observations and IoT solutions. Cost-efficient solutions based on a single sensor node provide less accuracy, while sensor networks acquire results comparable to reference data. This short review presents an overview of available sensors, methods and algorithms for measurements of chlorophyll fluorescence and identifies open issues and research directions for the future work.
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