Reflectance Spectroscopy - a powerful remote sensing tool - A. Nathues, IMPRS Course 2007.

Slides:



Advertisements
Similar presentations
Instrumental Chemistry
Advertisements

Johan Warell*, A. Sprague, R. Kozlowski, A. Önehag*, G. Trout, B. Davidsson*, J. Helbert, D. Rothery *Department of Physics and Astronomy, Uppsala University,
Raman Spectroscopy A) Introduction IR Raman
Bragg’s Law nl=2dsinΘ Just needs some satisfaction!! d Θ l
11 Components of Optical Instruments Lecture Spectroscopic methods are based on either: 1. Absorption 2. Emission 3. Scattering.
Spectroscopy. Spectroscopy is complex - but it can be very useful in helping understand how an object like a Star or active galaxy is producing light,
Anandh Subramaniam & Kantesh Balani
The iron content of runoff from a banana ranch is a necessary analytical parameter to analyze. A 25.0mL sample of the runoff was acidified with HNO3 and.
Chapter 5 Light and Matter: Reading Messages from the Cosmos
The Nebular Theory, Matter, and Light 1. 1.Terrestrial, Jovian, and dwarf planets 2. 2.Nebular theory 3. 3.Matter – atoms and molecules 4. 4.Kinetic and.
Remote Sensing for Geologic Applications Soil Properties Mineral and Rock Identification Geomorphology (landforms) Volcanology Coastal Processes Fluvial.
Energy interactions in the atmosphere
Photons of Light The smallest unit of light is a photon A photon is often called a particle of light The Energy of an individual photon depends on its.
1 Lab experiments on phyllosilicates and comparison with CRISM data of Mars Mario Parente, Janice L. Bishop and Javier Cuadros.
The Nature of Light In Astronomy. Herschel’s Infrared experiment Invisible (to our eyes) light immediately beyond the color red is call infrared light.
Identifying Minerals Different types of minerals absorb and scatter incident energy differently for different wavelengths of light!!! These differences.
Space Weathering on Mercury By Jake Turner PTYS 395.
(8) Absorption – Visible and IR Physics of the Atmosphere II Atmo II 193a.
Taxonomy of Small Bodies AS3141 Benda Kecil dalam Tata Surya Prodi Astronomi 2007/2008 B. Dermawan.
Time out—states and transitions Spectroscopy—transitions between energy states of a molecule excited by absorption or emission of a photon h =  E = E.
What Are Some Types of Spectroscopy ?
Common types of spectroscopy
Light. White light emits light at all wavelengths. Excitation of certain elements or the electrical excitation of certain elements give rise to an atomic.
 PART Requirements for Spectroscopic Techniques for Polymers 1. High resolution 2. High sensitivity (>1%) 3. High selectivity between molecular.
© 2010 Pearson Education, Inc. Light and Matter: Reading Messages from the Cosmos.
0. To first order, the instrument is working very well ! 1.Evolution of the IR detector with time 2.Stability of the L channel 3.Saturation 4.Linearity.
Electromagnetic Radiation. Is light a wave or a particle? Yes It’s both, and neither At atomic scales, we have no exact analogs for phenomena For some.
Energy Energy is a property that enables something to do work
Europlanet Strategic Workshop; General Assembly ESA ESTEC 26,27/02/ European data bank of spectral properties of minerals and their mixtures Maria.
Remote Sensing Energy Interactions with Earth Systems.
10-1 Application of IR Raman Spectroscopy 3 IR regions Structure and Functional Group Absorption IR Reflection IR Photoacoustic IR IR Emission Micro.
Spectral Characteristics
Geology 1303-Block 2 Minerals Rock Cycle Igneous Rocks-(including volcanoes&plutons) Sedimentary Rocks Metamorphic rocks Exam 2 :Oct 18 th WED -To be Confirmed.
Chapter 5 Remote Sensing Crop Science 6 Fall 2004 October 22, 2004.
Infrared Spectroscopy
Electromagnetic Radiation Most remotely sensed data is derived from Electromagnetic Radiation (EMR). This includes: Visible light Infrared light (heat)
States and transitions
How to Make Starlight (part 1) Chapter 7. Origin of light Light (electromagnetic radiation) is just a changing electric and magnetic field. Changing electric.
The iron content of runoff from a banana ranch is a necessary analytical parameter to analyze. A 25.0mL sample of the runoff was acidified with HNO3 and.
Digital Imaging and Remote Sensing Laboratory Spectral Signatures.
EG2234: Earth Observation Interactions - Land Dr Mark Cresswell.
Starlight and Atoms Chapter 6. The Amazing Power of Starlight Just by analyzing the light received from a star, astronomers can retrieve information about.
11.3: Analytical techniques can be used to determine the structure of a compound, analyze the composition of a substance, or determine the purity of a.
Digital Imaging and Remote Sensing Laboratory Thermal Infrared Spectral Analysis Thermal absorption/emissivity structure (3-20 µm) can be indicative of.
Remote Sensing in Geology. Lesson 1: Definition and scope of Remote Sensing Brief history Lesson 2: RS system Elements of the RS system Lesson 3: Resources.
Laser physics and its application Introductory Concept The word LASER is an acronym for Light Amplification by Stimulated Emission of Radiation Lasers,
Hyperspectral remote sensing
Chemistry XXI Unit 2 How do we determine structure? The central goal of this unit is to help you develop ways of thinking that can be used to predict the.
1.1 What’s electromagnetic radiation
Lecture 8: Volume Interactions Thursday, 28 January 2010 Ch 1.8 Major spectral features of minerals (p. xiii-xv), from Infrared.
IB NOTES: Modern Analytical Chemistry. Definitions: Qualitative Analysis: The detection of the __________________ but not the __________ of a substance.
Absorption Spectroscopy
Raman spectroscopy.
The Study of Light. The Electromagnetic Spectrum  includes gamma rays, X-rays, ultraviolet light, visible light, infrared radiation, microwaves, and.
The Study of Light.
Electromagnetic Radiation
M. Lazzarin, S. Marchi Astronomy Dept. Padova
Spectroscopy Lecture.
Chapter 6 INORGANIC ANALYSIS
Dr. Paul S. Hardersen University of North Dakota
Lecture 8: Volume Interactions
Introduction and Principle of IR Spectrophotometry
ELECTROMAGNETIC SPECTRUM
Lecture 8: Volume Interactions
Introduction and Basic Concepts
Chapter 3 Review Worksheet
REMOTE SENSING.
REMOTE SENSING.
化工群英文示例 沙鹿高工 簡佩琳.
Lecture 8: Volume Interactions
Presentation transcript:

Reflectance Spectroscopy - a powerful remote sensing tool - A. Nathues, IMPRS Course 2007

What is Remote Sensing? The acquisition of information about a target in the absence of physical contact Measure changes in: Electromagnetic fields (spectroscopy) Acoustic fields (sonar) Potential fields (gravity) Physical definition

Why remote sensing? Spectroscopic remote sensing is one of the most powerful techniques for determining the surface composition of inaccessible targets. Compositional information is important for constraining the history of a target.

The Question Most of geological remote sensing asks the following question: Given a reflectance curve (spectrum) obtained by a spectrometer, what is the composition and structure of the material within the field of view of the instrument? Or in other words… “What kind of rock, regolith or ice am I looking at?”

Rock Assemblage of minerals Simplified view: with the knowledge of 1)known optical constants of various minerals and 2)the angle of incident and emitted light, we can MODEL the reflectance of a rock with mixed grain sizes and minerals!

What happens when light hits a rock? Incident lightReflected Scattered Material Transmitted Absorbed Emitted

What is a spectrum? Variation in a quantity as a function of wavelength “Spectral reflectance” is the reflectance measured in a narrow band of wavelength as a function of wavelength

Spectral Ranges (in Planetary Science) UV: nm VIS: nm NIR: µm Mid-infrared: µm Thermal infrared : µm

Why do we get spectra ? Differences in absorption and scattering for different wavelengths can be used to identify the minerals. We can measure the light energy at the various wavelengths = a spectrum We examine the maxima and minima of spectral reflectance curves – minima are caused by molecular absorption, and we call these absorption features or absorption bands.

What causes absorption features? 1.Electronic processes (~ 0.1 to 3 µm) –Crystal field effect High-energy photons absorbed by bound electrons Energy states/wavelength controlled by the atom and the crystal Primarily interactions with transition metals (e.g., Fe, Ti) Crystal Field Theory (CFT) is used to describe absorptions –Charge transfer absorptions (affecting mainly the UV) 2.Vibrational processes (>~6 µm) –Excitation of fundamental vibrational motions of bonds in a lattice or molecular compound Wavelength related to strength and length of bonds –~1.5 - ~6 µm are weaker overtones and combination bands Complex transitional region between reflection & emission

Please remember ! Troughs are where things are happening. Peaks are where things are not happening (VIS and NIR only)

The Originators: Minerals Naturally-occurring inorganic substances with a definite and predictable chemical composition and physical properties Major groups: –Silicates –Carbonates

Rocks Naturally-occurring aggregates showing similar composition and texture; composed of minerals or their fragments (+ organics on Earth) Groups: –igneous rocks (e.g. basalt) –sedimentary rocks (e.g. sandstone) –metamorphic rocks (e.g. gneiss)

Regolith Fragmental incoherent rocky debris that covers the most areas of atmosphere-less bodies like for example the Moon and asteroids

Spectra of Rock Forming Minerals Absorption features that occur in reflectance spectra are a sensitive indicator of mineralogy and chemical composition for a wide variety of materials The investigation of the mineralogy and chemical composition of surfaces delivers insights into the origin and evolution of planetary bodies –e.g. Pyroxene mineralogy and chemistry are important for determining the petrogenesis –e.g. Iron content crucial for the degree of body differentiation

Lab Spectra and Remote Sensing Lab spectra of well–characterized minerals and mineral mixtures are the basis for the analysis of ground and space based spectra since only laboratory measurements allow to investigate homogeneous samples in which all parameters can be controlled. Tasks 1.Characterization of individual phases (minerals, ices, glasses) mineralogy chemistry particle size 2.Characterization of rocks and mineral mixtures mineralogy chemistry particle sizes packing 3.Characterization of effects caused by the physical environment temperature viewing geometry maturation processes (Space Weathering)

Spectra of Rock Forming Minerals 1)Silicates Olivine: strong absorption at ~ 1 μm due to three overlapping bands Pyroxene: Opx displays strong absorptions around 0.9 μm and 1.9 μm Cpx displays strong absorptions around 0.9 μm and sometimes around 2.2 μm Feldspars: often faint absorption bands Plagioclase for example displays absorption around 1.3 μm Phyllosilicates: partly very sharp and narrow absorptions! 2)Carbonates show a number of narrow, sharp absorption features for wavelengths > 1.6 μm 3)Oxides e.g. spinel (lunar rocks) display strong absorptions near 2 μm iron oxides show strong absorptions in UV 4)Sulfides and Sulfur are less important and barely investigated 5)Hydrates (H 2 O) and hydroxides (OH - ) bands located often > 3 μm 6)Metals no absorption features, but reddish spectra, identification via suppressed absorption bands

Most Relevant Minerals for Remote Sensing a)Ni-Fe metal b)Olivine c)Pyroxene, here Orthopyroxene (offset) d)Plagioclas (offset) e)Spinel (offset)

Mineral Mixtures Almost all by remote sensing investigated solid surfaces consist of polymict rocks / mineral mixtures and show a wide range of grain sizes It’s often not possible to uniquely define the contributions of each parameter without independent constraints  ground reference sample helpful for remote sensing Most regoliths need nonlinear mixing models for composition determination, purely empirical and more quantitative methods including “Gaussian fitting” have been developed

Physical Effects (1) Grain Size and Albedo Particle size and albedo –The albedo of weakly absorbing minerals increases with decreasing particle size –The albedo of very strongly absorbing minerals decreases with decreasing particle size Particle size and contrast –Absorption band contrast varies with particle size but does not affect positions of absorption features Grain size needs to be considered

Physical Effects (2) Temperature Lowering of sample temperature can lead to: 1)Slight negative shifts of absorption band positions 2)Splitting of absorption bands For detailed investigations: T difference between observed surface and lab sample to be considered

Physical Effects (3) Maturation – Space Weathering Solar and cosmic radiation + micrometeoritic bombardment Lowering of albedo Reddening of spectral slopes Weakening of absorption bands

Physical Effects (4) Geometry Effects Phase angle increase leads to: 1)phase reddening, i.e. the steepness of the spectral slope outside of absorption features increases 2)Absorption band depth increase Photometric correction necessary

Color Photometry + Spectroscopy Color photometry (filter): Advantages: –Large surface area coverable in one exposure –Morphological information Disadvantages: –Often low spectral resolution  raw mineralogical analysis –Colors not measured simultaneously  further tricky corrections needed Spectroscopy: Advantage: –High Spectral resolution and simultaneous measurements  best possible composition analysis Disadvantage: –No morphological information

Resources of Spectra Ground-based Telescopes Low costs Large number of targets Low spatial resolution Invisibility of surface areas (e.g. lunar poles and far-side) Disturbances by Earth atmosphere (except Hubble) Time slots for observations to be watched Spacecrafts High spatial resolution Visibility of the whole surface High risk High costs Low number of targets

Mineralogical Analysis of Spectra Calibrated Spectrum

Continuum Corrected Spectrum Band I and Band II depths and minimum positions Cation content of pyroxene and olivine (olivine: Band I only) Type of Pyroxene Band II / Band I area ratio Olivine-Pyroxene abundance ratio

Spectral Variations as Indication for Mineralogical Variations on Asteroid 15 Eunomia (1)

Spectral Variations as Indication for Mineralogical Variations on 15 Eunomia (2) Color-shape model of 15 Eunomia according to Nathues et al. (2005). False color representation: blue – 440 nm, green – 700 nm and red – 940 nm.

Spectral Variations as Indication for Mineralogical Variations on 4 Vesta

NEAR at 433 Eros

SMART-1 / SIR lunar scans