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Updated: Jan 20, 2026
Schlenk Lines Transfer of Solvents to Avoid Air and Moisture
Published on: April 30, 2023
Photochemistry of Benzophenone in Solution: A Tale of Two Different Solvent Environments
Ravi Kumar Venkatraman1, Andrew J Orr-Ewing1
1School of Chemistry , University of Bristol , Cantock's Close , Bristol BS8 1TS , United Kingdom.
Abstract:
A long-standing ambition of photochemists is to excite species selectively in a complex liquid solution and in turn instigate a controlled chemical reaction. Benzophenone (Bzp) has been studied over six decades as a model system for understanding the photophysics and photochemistry of organic chromophores. Herein, we exploit the red-edge excitation effect to demonstrate that by subensemble selective excitation of Bzp molecules, either coordinated or noncoordinated to phenol through hydrogen bonding in a dichloromethane solution, the rate of an H atom abstraction reaction can be accelerated by a factor of ∼40. To this end, we have employed femtosecond time-resolved electronic and vibrational absorption spectroscopy in conjunction with DFT/TD-DFT calculations. The outcomes have implications for deductions drawn from single-excitation-wavelength studies of the photochemistry of similar molecular systems and especially of charge-transfer chromophores.
Related Concept Videos
Schlenk Lines Transfer of Solvents
Schlenk lines and high vacuum lines are both used to exclude moisture and oxygen from reactions by running reactions under a slight overpressure of inert gas (usually N2 or Ar) or under vacuum. Vacuum transfer has been developed as a method separate solvents (other volatile reagents) from drying agents (or other nonvolatile agents) and dispense them to reaction or storage vessels...
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Ideal Solutions
General Properties of Solutions
Solution Formation
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Enthalpy of Solution
