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Sublimation01:03

Sublimation

4.5K
Sublimation is the direct transformation of a solid to a gaseous state. For instance, at standard pressure and room temperature, solid carbon dioxide sublimes to gaseous carbon dioxide. The phase diagram depicts the conditions required for sublimation. This process occurs at the solid-gas phase boundary and is not observed above the triple point of the substance. The reverse of sublimation is called deposition, where a gaseous substance condenses directly into a solid. Sublimation and...
4.5K
Electrophilic Aromatic Substitution: Overview01:16

Electrophilic Aromatic Substitution: Overview

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In an electrophilic aromatic substitution reaction, an electrophile substitutes for a hydrogen of an aromatic compound.
13.3K
Phase Transitions: Sublimation and Deposition02:33

Phase Transitions: Sublimation and Deposition

19.4K
Some solids can transition directly into the gaseous state, bypassing the liquid state, via a process known as sublimation. At room temperature and standard pressure, a piece of dry ice (solid CO2) sublimes, appearing to gradually disappear without ever forming any liquid. Snow and ice sublimate at temperatures below the melting point of water, a slow process that may be accelerated by winds and the reduced atmospheric pressures at high altitudes. When solid iodine is warmed, the solid sublimes...
19.4K
Nucleophilic Substitution Reactions02:34

Nucleophilic Substitution Reactions

18.8K
Historical perspective
In 1896, the German chemist Paul Walden discovered that he could interconvert pure enantiomeric (+) and (-) malic acids through a series of reactions. This conversion suggested the involvement of optical inversion during the substitution reaction. Further, in 1930, Sir Christopher Ingold described for the first time two different forms of nucleophilic substitution reactions, which are known as SN1 (nucleophilic substitution unimolecular) and SN2 (nucleophilic substitution...
18.8K
Electrophilic Aromatic Substitution: Chlorination and Bromination of Benzene01:15

Electrophilic Aromatic Substitution: Chlorination and Bromination of Benzene

10.3K
Chlorination and bromination are important classes of electrophilic aromatic substitutions, where benzene reacts with chlorine or bromine in the presence of a Lewis acid catalyst to give halogenated substitution products. A Lewis acid such as aluminium chloride or ferric chloride catalyzes the chlorination, and ferric bromide catalyzes the bromination reactions. During the bromination of alkenes, bromine polarizes and becomes electrophilic. However, in the bromination of benzene, the bromine...
10.3K
Thermal and Photochemical Electrocyclic Reactions: Overview01:26

Thermal and Photochemical Electrocyclic Reactions: Overview

2.9K
Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.
2.9K

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Related Experiment Video

Updated: Dec 25, 2025

Reductive Electropolymerization of a Vinyl-containing Poly-pyridyl Complex on Glassy Carbon and Fluorine-doped Tin Oxide Electrodes
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Sublimation Electrification of Organic Compounds.

Bijay Banstola1, Kermit K Murray1

  • 1Department of Chemistry, Louisiana State University, Baton Rouge, Louisiana 70803, United States.

Journal of the American Society for Mass Spectrometry
|April 3, 2020
PubMed
Summary

Electrifying organic compounds under vacuum generates measurable current from charged particle emission during sublimation. This surface electrification is influenced by the compound matrix and acidic additives.

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Area of Science:

  • Physical Chemistry
  • Materials Science
  • Surface Science

Background:

  • Understanding the electrical properties of organic crystalline deposits is crucial for developing new electronic materials.
  • Previous studies have explored charge generation in organic materials, but detailed quantification under controlled sublimation conditions is limited.

Purpose of the Study:

  • To measure and quantify the electrification of crystalline organic compounds under high vacuum conditions.
  • To investigate the factors influencing charge generation and transport during sublimation.

Main Methods:

  • Deposition of organic compounds onto a metal plate.
  • Measurement and amplification of electrical current during sublimation under high vacuum.
  • Integration of current over time to determine total charge.
  • Analysis of matrix-dependent charge behavior and effects of acidic additives and electric fields.

Main Results:

  • Obtained picoampere-level electrical signals within seconds of applying high vacuum, persisting for minutes during sublimation.
  • Demonstrated that charge magnitude and sign are dependent on the compound matrix.
  • Showed that the presence of organic or mineral acids and applied electric fields significantly affect electrification.

Conclusions:

  • Surface electrification is caused by the emission of charged matrix particles during sublimation.
  • Protons and hydroxide ions are identified as the primary ionic charge carriers.
  • The findings provide insights into the fundamental mechanisms of charge generation in sublimating organic solids.