Sources of variability in canopy reflectance and the convergent properties of plants

被引:609
作者
Ollinger, S. V. [1 ]
机构
[1] Univ New Hampshire, Complex Syst Res Ctr, Inst Study Earth Oceans & Space, Durham, NH 03824 USA
关键词
functional convergence; hyperspectral infrared imager; National Ecological Observatory Network (NEON); near infrared; plant traits; remote sensing; spectral reflectance; LEAF-AREA INDEX; DIFFERENCE VEGETATION INDEX; MESOPHYLL SURFACE-AREA; REMOTE-SENSING DATA; RADIATIVE-TRANSFER; CHLOROPHYLL CONTENT; WATER-CONTENT; SPECTRAL REFLECTANCE; INFRARED REFLECTANCE; OPTICAL-PROPERTIES;
D O I
10.1111/j.1469-8137.2010.03536.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
How plants interact with sunlight is central to the existence of life and provides a window to the functioning of ecosystems. Although the basic properties of leaf spectra have been known for decades, interpreting canopy-level spectra is more challenging because leaf-level effects are complicated by a host of stem- and canopy-level traits. Progress has been made through empirical analyses and models, although both methods have been hampered by a series of persistent challenges. Here, I review current understanding of plant spectral properties with respect to sources of uncertainty at leaf to canopy scales. I also discuss the role of evolutionary convergence in plant functioning and the difficulty of identifying individual properties among a suite of interrelated traits. A pattern that emerges suggests a synergy among the scattering effects of leaf-, stem- and canopy-level traits that becomes most apparent in the near-infrared (NIR) region. This explains the widespread and well-known importance of the NIR region in vegetation remote sensing, but presents an interesting paradox that has yet to be fully explored: that we can often gain more insight about the functioning of plants by examining wavelengths that are not used in photosynthesis than by examining those that are.
引用
收藏
页码:375 / 394
页数:20
相关论文
共 194 条
[41]   The role of xanthophyll cycle carotenoids in the protection of photosynthesis [J].
DemmigAdams, B ;
Adams, WW .
TRENDS IN PLANT SCIENCE, 1996, 1 (01) :21-26
[42]   Forage Production of the Argentine Pampa Region Based on Land Use and Long-Term Normalized Difference Vegetation Index Data [J].
Di Bella, Carlos M. ;
Negri, Ignacio J. ;
Posse, Gabriela ;
Jalmes, Florencia R. ;
Jobbagy, Esteban G. ;
Garbulsky, Martin F. ;
Deregibus, Victor A. .
RANGELAND ECOLOGY & MANAGEMENT, 2009, 62 (02) :163-170
[43]  
Ehleringer J.R., 1993, Scaling Physiological Processes: Leaf to Globe
[44]  
EHLERINGER JR, 1989, NAT HIS LOS, V34, P21
[45]   Simultaneous measurements of plant structure and chlorophyll content in broadleaf saplings with a terrestrial laser scanner [J].
Eitel, Jan U. H. ;
Vierling, Lee A. ;
Long, Dan S. .
REMOTE SENSING OF ENVIRONMENT, 2010, 114 (10) :2229-2237
[46]   CANOPY STRUCTURE AND VERTICAL PATTERNS OF PHOTOSYNTHESIS AND RELATED LEAF TRAITS IN A DECIDUOUS FOREST [J].
ELLSWORTH, DS ;
REICH, PB .
OECOLOGIA, 1993, 96 (02) :169-178
[47]   VISIBLE AND NEAR-INFRARED REFLECTANCE CHARACTERISTICS OF DRY PLANT MATERIALS [J].
ELVIDGE, CD .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1990, 11 (10) :1775-1795
[48]   Scaling metabolism from organisms to ecosystems [J].
Enquist, BJ ;
Economo, EP ;
Huxman, TE ;
Allen, AP ;
Ignace, DD ;
Gillooly, JF .
NATURE, 2003, 423 (6940) :639-642
[49]   Leaf anatomy enables more equal access to light and CO2 between chloroplasts [J].
Evans, JR .
NEW PHYTOLOGIST, 1999, 143 (01) :93-104
[50]  
Feild TS, 2001, PLANT PHYSIOL, V127, P566, DOI 10.1104/pp.010063