Jove
Visualize
お問い合わせ
JoVE
x logofacebook logolinkedin logoyoutube logo
JoVEについて
概要リーダーシップブログJoVEヘルプセンター
著者向け
出版プロセス編集委員会範囲と方針査読よくある質問投稿
図書館員向け
推薦の声購読アクセスリソース図書館諮問委員会よくある質問
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experimentsアーカイブ
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教員リソースセンター教員サイト
利用規約
プライバシーポリシー
ポリシー

関連する概念動画

Arrhenius Plots02:34

Arrhenius Plots

48.8K
The Arrhenius equation relates the activation energy and the rate constant, k, for chemical reactions. In the Arrhenius equation, k = Ae−Ea/RT, R is the ideal gas constant, which has a value of 8.314 J/mol·K, T is the temperature on the kelvin scale, Ea is the activation energy in J/mole, e is the constant 2.7183, and A is a constant called the frequency factor, which is related to the frequency of collisions and the orientation of the reacting molecules.
The Arrhenius equation can be used...
48.8K
Temperature Dependence on Reaction Rate02:55

Temperature Dependence on Reaction Rate

90.5K
The Collision Theory
Atoms, molecules, or ions must collide before they can react with each other. Atoms must be close together to form chemical bonds. This premise is the basis for a theory that explains many observations regarding chemical kinetics, including factors affecting reaction rates.
The collision theory is based on the postulates that (i) the reaction rate is proportional to the rate of reactant collisions, (ii) the reacting species collide in an orientation allowing contact between...
90.5K
Introduction to Enzyme Kinetics01:19

Introduction to Enzyme Kinetics

35.7K
Enzyme kinetics studies the rates of biochemical reactions. Scientists monitor the reaction rates for a particular enzymatic reaction at various substrate concentrations. Additional trials with inhibitors or other molecules that affect the reaction rate may also be performed.
The experimenter can then plot the initial reaction rate or velocity (Vo) of a given trial against the substrate concentration ([S]) to obtain a graph of the reaction properties. For many enzymatic reactions involving a...
35.7K
Effect of Temperature Change on Reaction Rate02:28

Effect of Temperature Change on Reaction Rate

5.3K
The Arrhenius equation,
5.3K
The Integrated Rate Law: The Dependence of Concentration on Time02:39

The Integrated Rate Law: The Dependence of Concentration on Time

47.1K
While the differential rate law relates the rate and concentrations of reactants, a second form of rate law called the integrated rate law relates concentrations of reactants and time. Integrated rate laws can be used to determine the amount of reactant or product present after a period of time or to estimate the time required for a reaction to proceed to a certain extent. For example, an integrated rate law helps determine the length of time a radioactive material must be stored for its...
47.1K
E2 Reaction: Kinetics and Mechanism02:45

E2 Reaction: Kinetics and Mechanism

13.1K
SN2 substitutions and E2 eliminations of alkyl halides proceed via a concerted pathway. While the nucleophile attacks the alpha carbon in SN2 reactions, it functions as a strong base and abstracts a beta hydrogen in the E2 mechanism. The rate-limiting transition state in E2 elimination reactions is characterized by partially broken carbon–hydrogen and carbon–halogen bonds and a partially formed pi bond between the alpha and beta carbons. The beta hydrogen and halide are eliminated...
13.1K

こちらも読む

関連記事

共著者、ジャーナル、引用グラフによってこの研究に関連する記事。

並び替え
Same author

Rotational memory function of SPC/E water.

The Journal of chemical physics·2026
Same author

Dynamics of low-temperature water are driven by electrostatics.

The Journal of chemical physics·2026
Same author

Protein Electron Transfer in Solution, Protein Powders, and Electrode Confinement.

ACS omega·2026
Same author

Leveraging Multiproton-Coupled Electron Transfer to Improve Ir(III) Photocatalyst Efficiency.

The journal of physical chemistry. C, Nanomaterials and interfaces·2026
Same author

Photosynthetic Reaction Center: A Nonergodic, Dynamically Anisotropic, and Nonlinear Charge-Transport Engine.

The journal of physical chemistry letters·2025
Same author

Transient non-local interactions dominate the dynamics of measles virus N<sub>TAIL</sub>.

Communications chemistry·2025

関連する実験動画

Updated: Mar 18, 2026

Characterizing Electron Transport through Living Biofilms
08:52

Characterizing Electron Transport through Living Biofilms

Published on: June 1, 2018

9.0K

アレニウス図で観測されたマーカス・ベル型電子移転運動

Morteza M Waskasi1, Gerdenis Kodis1, Ana L Moore1

  • 1School of Molecular Sciences and ‡Department of Physics, Arizona State University , Tempe, Arizona 85287, United States.

Journal of the American Chemical Society
|July 6, 2016
PubMed
まとめ

マーカスの電子移転理論は 鐘状の速度依存を予測しています フラーレン・ポルフィリン二酸化物に関する実験では この速度の法則は 化学的変化だけでなく 温度の変化にも当てはまります

さらに関連する動画

Electrochemical Impedance Spectroscopy as a Tool for Electrochemical Rate Constant Estimation
08:41

Electrochemical Impedance Spectroscopy as a Tool for Electrochemical Rate Constant Estimation

Published on: October 10, 2018

26.0K
Determination of the Photoisomerization Quantum Yield of a Hydrazone Photoswitch
09:33

Determination of the Photoisomerization Quantum Yield of a Hydrazone Photoswitch

Published on: February 7, 2022

4.0K

関連する実験動画

Last Updated: Mar 18, 2026

Characterizing Electron Transport through Living Biofilms
08:52

Characterizing Electron Transport through Living Biofilms

Published on: June 1, 2018

9.0K
Electrochemical Impedance Spectroscopy as a Tool for Electrochemical Rate Constant Estimation
08:41

Electrochemical Impedance Spectroscopy as a Tool for Electrochemical Rate Constant Estimation

Published on: October 10, 2018

26.0K
Determination of the Photoisomerization Quantum Yield of a Hydrazone Photoswitch
09:33

Determination of the Photoisomerization Quantum Yield of a Hydrazone Photoswitch

Published on: February 7, 2022

4.0K

科学分野:

  • 物理化学
  • 写真化学
  • 電子移転

背景:

  • マーカス理論は,反応の自由エネルギーに基づく電子の移転速度を記述する.
  • 鍵となる予測は,鐘形 (逆パラボラ) のレート依存性である.
  • 伝統的に,これは分子構造の変化によって観察されます.

研究 の 目的:

  • マーカス理論の予測を実験的に検証する.
  • 化学的変化ではなく,温度の変化が,この現象を誘発できるかどうかを調査する.
  • マーカスのエネルギーギャップの法則を 明確に証明するために

主な方法:

  • フラーレン・ポルフィリン二酸化システムを研究した
  • 光誘導による電子移転と,その後の電荷再結合を調査した.
  • 気温の逆関数として 荷重再結合率を分析した.

主要な成果:

  • 逆の温度による電荷再結合率による鐘状の依存を観測した.
  • 温度は冷却時に増加し,低温では減少した.
  • この非アーレニウスの行動は,再構成と反応の自由エネルギーにおける重要な温度変動の結果である.

結論:

  • 温度変動がマーカス逆パラボラ効果を誘発することを示した.
  • マーカスのエネルギーギャップの法則の 強力な実験的証拠を提供した 化学的変化なし.
  • 電子移転運動における温度依存の再編成と反応自由エネルギーの役割を強調した.