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Metallic Solids02:37

Metallic Solids

Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability. Many...
Crystal Field Theory - Octahedral Complexes02:58

Crystal Field Theory - Octahedral Complexes

Crystal Field Theory
To explain the observed behavior of transition metal complexes (such as colors), a model involving electrostatic interactions between the electrons from the ligands and the electrons in the unhybridized d orbitals of the central metal atom has been developed. This electrostatic model is crystal field theory (CFT). It helps to understand, interpret, and predict the colors, magnetic behavior, and some structures of coordination compounds of transition metals.
CFT focuses on...
Colors and Magnetism03:02

Colors and Magnetism

Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human eye.
Ladder Diagrams: Complexation Equilibria01:07

Ladder Diagrams: Complexation Equilibria

Ladder diagrams are useful for evaluating equilibria involving metal-ligand complexes. The vertical scale of the ladder diagram represents the concentration of unreacted or free ligand, pL. The horizontal lines on the scale depict the log of stepwise formation constants for metal-ligand complexes and indicate the dominant species in all the regions.
The formation constant, K1, for the formation of Cd(NH3)2+ complex from cadmium and ammonia is 3.55 × 102. Log K1 (i.e. pNH3) is 2.55, and...
Extraction: Advanced Methods00:56

Extraction: Advanced Methods

Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is formed in...
Microbes and Other Elemental Cycles01:24

Microbes and Other Elemental Cycles

Microbial activity plays a pivotal role in the biogeochemical cycling of iron and manganese, especially at the redox gradients characteristic of stratified aquatic environments. These cycles are driven by microbial transformations between oxidized and reduced forms of the metals, allowing organisms to exploit them for metabolic energy and structural purposes.Iron Cycling Across Redox GradientsIn neutral, oxygen-rich surface waters, iron is predominantly found in its oxidized, insoluble ferric...

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Updated: Jul 17, 2026

Detection and Recovery of Palladium, Gold and Cobalt Metals from the Urban Mine Using Novel Sensors/Adsorbents Designated with Nanoscale Wagon-wheel-shaped Pores
10:31

Detection and Recovery of Palladium, Gold and Cobalt Metals from the Urban Mine Using Novel Sensors/Adsorbents Designated with Nanoscale Wagon-wheel-shaped Pores

Published on: December 6, 2015

溶解性Mn (III) は,サブボキシゾーンで溶解する.

Robert E Trouwborst1, Brian G Clement, Bradley M Tebo

  • 1College of Marine and Earth Studies, University of Delaware, Lewes, DE 19958, USA.

Science (New York, N.Y.)
|September 30, 2006
PubMed
まとめ

以前は不安定と考えられていた溶性マンガネス (Mn) は,黒海のような天然の水域に豊富に存在する. このマンガンの形態は,サブボキシゾーンを維持する上で重要な役割を果たします.

科学分野:

  • 環境化学 環境化学
  • 地質化学 地質化学
  • マリン・ケミストリー (海洋化学)

背景:

  • 溶性マンガネス (Mn) は,伝統的に天然の水中で不安定と考えられ,Mn (II) とMn (IV) O2.O2に比例しない速さで溶解していた.
  • 以前の研究では,Mn (III) が主に複合体として存在するのは,実験室環境でのみであり,天然の水中の環境では存在しないと示唆されていた.

研究 の 目的:

  • 自然水体の溶性マンガンの発生と安定性を調査する.
  • 水系におけるマンガンの生地化学的循環における溶解可能なMn (III) の役割を決定する.
  • サブボキシゾーンにおけるMn (III) の形成と安定化メカニズムを理解する.

主な方法:

  • マンガンの種化分析のために黒海とチェサピーク湾から採取した水サンプル.
  • 水柱内の溶性Mn (III) の分布をマッピングするために,深さプロフィールを利用しました.
  • マンガンの濃度と特異性を分析し,Mn (III) の生産と消費地域を特定しました.

主要な成果:

  • 黒海で5マイクロモールまでの高濃度の溶性Mn(IIIが検出され,溶けたマンガンの100%を含んでいる.
  • 上部サブボックスのゾーンでのMn(II) 酸化と下部サブボックスのゾーンでのMn(IV) O2還元による特定されたMn(III) 生産.

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関連する実験動画

Last Updated: Jul 17, 2026

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Detection and Recovery of Palladium, Gold and Cobalt Metals from the Urban Mine Using Novel Sensors/Adsorbents Designated with Nanoscale Wagon-wheel-shaped Pores

Published on: December 6, 2015

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09:42

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Published on: August 7, 2016

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10:45

Stable Aqueous Suspensions of Manganese Ferrite Clusters with Tunable Nanoscale Dimension and Composition

Published on: February 5, 2022

  • 溶解可能なMn (III) は,研究された両方の環境で未知の天然リガンドによって安定化されていることが判明しました.
  • チェサピーク湾で溶解したMn (III) のマイクロモラー濃度が観測されました.
  • 結論:

    • 溶解マンガネス (III) は,天然水中の溶解マンガネスの安定した重要な成分です.
    • Mn (III) は,電子受容体とドナーの両方として作用することによって,サブボックスの領域を維持する上で重要な役割を果たします.
    • Mn (III) は,水中の環境や堆積物における酸化/無酸化界面で,おそらく無所不在である.