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関連する概念動画

Interfacial Electrochemical Methods: Overview01:06

Interfacial Electrochemical Methods: Overview

380
Interfacial electrochemical methods focus on the phenomena occurring at the boundary between an electrode and a solution, as opposed to bulk methods that concentrate on the solution's overall properties. These interfacial methods are classified as either static or dynamic based on the presence of a nonzero current in the electrochemical cell and the consistency of analyte concentrations. Static methods, such as potentiometry, measure the cell's potential without any significant current...
380
Intermolecular Forces03:13

Intermolecular Forces

60.9K
Atoms and molecules interact through bonds (or forces): intramolecular and intermolecular. The forces are electrostatic as they arise from interactions (attractive or repulsive) between charged species (permanent, partial, or temporary charges) and exist with varying strengths between ions, polar, nonpolar, and neutral molecules. The different types of intermolecular forces are ion–dipole, dipole–dipole, hydrogen bonds, and dispersion; among these, dipole–dipole, hydrogen...
60.9K
The Nernst Equation02:59

The Nernst Equation

42.1K
Nonstandard Reaction Conditions
The interconnection between standard cell potentials and various thermodynamic parameters such as the standard free energy change ΔG° and equilibrium constant K has been previously explored. For example, a redox reaction involving zinc(II) and tin(II) ions at 1 M concentration with Eºcell = +0.291 V and ΔG° = −56.2 kJ is spontaneous.
42.1K
Protein Diffusion in the Membrane01:24

Protein Diffusion in the Membrane

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Proteins show rotational as well as lateral diffusion across the membrane. The lateral diffusion of proteins was confirmed through the cell fusion experiment where mouse and human cells were fused, resulting in hybrid cells. When the human and mouse cells fused, the specific membrane proteins on human and mouse cells were marked with the red and green-fluorescent markers, respectively. Initially, the red and green fluorescence was located on the respective hemisphere of the cell. As time...
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Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model01:09

Theories of Dissolution: The Danckwerts' Model and Interfacial Barrier Model

426
Various dissolution theories provide insight into the factors that influence the dissolution rate. Danckwerts' Model suggests that turbulence, rather than a stagnant layer, characterizes the dissolution medium at the solid-liquid interface. In this model, the agitated solvent contains macroscopic packets that move to the interface via eddy currents, facilitating the absorption and delivery of the drug to the bulk solution. The regular replenishment of solvent packets maintains the...
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Non-equilibrium in the Cell01:16

Non-equilibrium in the Cell

4.8K
An important concept in studying metabolism and energy is that of chemical equilibrium. Most chemical reactions are reversible. They can proceed in both directions, releasing energy into their environment in one direction, and absorbing it from the environment in the other direction. The same is true for the chemical reactions involved in cell metabolism, such as the breaking down and building up of proteins into and from individual amino acids, respectively. Reactants within a closed system...
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関連する実験動画

Updated: Sep 6, 2025

Microfluidic Buffer Exchange for Interference-free Micro/Nanoparticle Cell Engineering
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Microfluidic Buffer Exchange for Interference-free Micro/Nanoparticle Cell Engineering

Published on: July 10, 2016

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細胞表面相互作用による界面微環境におけるイオン枯渇

Tasha A Jarisz1, Christopher D Hennecker1, Dennis K Hore1,2

  • 1Department of Chemistry, University of Victoria, Victoria, British Columbia V8W 3V6, Canada.

Journal of the American Chemical Society
|June 27, 2022
PubMed
まとめ

シリカ表面の近くにあるバクテリアは 局所的なイオン強さを減らし 表面の電荷を変化させます このラベルのない研究では 細胞表面の相互作用に影響を与える ナノスケールの環境変化が明らかになりました

科学分野:

  • 表面科学
  • 微生物学
  • 物理化学

背景:

  • 表面の近くのナノスケール領域は,周囲との物質の相互作用を制御する.
  • 細胞表面との接触には静電と酸塩の相互作用があり,局所的な環境が変化します.

研究 の 目的:

  • ナノスケール環境の変化をシリカ表面で細菌の存在で調査する.
  • 細胞に付着した表面の電気静的電位の変化の背後にあるメカニズムを理解する.

主な方法:

  • ナノスケール分析のためのラベルフリー振動プローブを使用しました.
  • 溶液中の細菌を含むシリカ表面での静電電位の変化を測定した.

主要な成果:

  • シリカ表面の静電電位の 漸進的な増加を観測した.
  • 細菌が引き起こした変化が 潜在的シフトの原因だと
  • 表面のイオン強度が 大体より4倍も低下した

結論:

  • バクテリアの存在は,インターフェイスの化学環境を変化させ,イオン強度を大幅に低下させます.
  • 観測された静電電位の増加は,直接的な細胞電荷ではなく,イオン強度の減少の結果です.

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Taking Advantage of Reduced Droplet-surface Interaction to Optimize Transport of Bioanalytes in Digital Microfluidics
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  • この研究は,細胞表面の相互作用におけるナノスケールの環境変化の重要性を強調しています.