Skip to main navigation
Skip to search
Skip to main content
Penn State Home
Help & FAQ
Link opens in a new tab
Search content at Penn State
Home
Researchers
Research output
Research units
Equipment
Grants & Projects
Prizes
Activities
Feasibility study of a space-based high pulse energy 2 μm CO
2
IPDA lidar
Upendra N. Singh
, Tamer F. Refaat
, Syed Ismail
,
Kenneth J. Davis
, Stephan R. Kawa
, Robert T. Menzies
, Mulugeta Petros
Meteorology and Atmospheric Science
Institute of Energy and the Environment (IEE)
Research output
:
Contribution to journal
›
Article
›
peer-review
45
Link opens in a new tab
Scopus citations
Overview
Fingerprint
Fingerprint
Dive into the research topics of 'Feasibility study of a space-based high pulse energy 2 μm CO
2
IPDA lidar'. Together they form a unique fingerprint.
Sort by
Weight
Alphabetically
Keyphrases
Space-based
100%
High Pulse Energy
100%
Integrated Path Differential Absorption Lidar
100%
CO2 Measurement
66%
Integrated Path Differential Absorption
66%
Water Vapor
33%
Simultaneous Measurement
33%
Detection System
33%
Measurement Capability
33%
Technology Development
33%
Systematic Error
33%
Direct Detection
33%
Random Error
33%
Optical Depth
33%
Loading Conditions
33%
Thin Cloud
33%
Absorption Feature
33%
Strong Absorption
33%
Dry Air
33%
Parameter Dependence
33%
Atmospheric Measurements
33%
Earth Surface
33%
Recent Technology
33%
HgCdTe
33%
Continental Scale
33%
Carbon Dioxide CO2
33%
Weight Function
33%
Aerosol Loading
33%
Surface Measurement
33%
Atmospheric Model
33%
Signal Averaging
33%
Line Broadening
33%
Avalanche Photodiode
33%
Surface Target
33%
Weight Measurement
33%
Aerosol Model
33%
Reference Surface
33%
Railroad Valley
33%
Engineering
Feasibility Study
100%
Optical Radar
100%
Pulse Energy
100%
Broadening
50%
Systematic Error
50%
Random Error
50%
Loading Condition
50%
Direct Detection
50%
Dry Air
50%
Railway
50%
Target Surface
50%
Signal Averaging
50%
Avalanche Photodiode
50%
Technological Development
50%
Reference Surface
50%
Earth and Planetary Sciences
Differential Absorption Lidar
100%
Feasibility Study
100%
Carbon Dioxide
100%
Atmospherics
25%
State of the Art
12%
Near-Surface Geology
12%
Earth Surface
12%
Technological Development
12%
Systematic Error
12%
Random Error
12%