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Metal dithiolene complex

Metal dithiolene complex is a science topic covered in the lgStudy science library. This page brings together a partial reference excerpt, illustrations, worked examples, real-world applications and a short study plan, so you can understand Metal dithiolene complex rather than just read about it. In short: Dithiolene metal complexes are complexes containing 1,2-dithiolene ligands. 1,2-Dithiolene ligands, a particular case of 1,2-dichalcogenolene species along with 1,2-diselenolene derivatives, are unsaturated bidentate ligand wherein the two donor atoms are sulfur. 1,2-Dithiolene metal complexes are often referred to as "metal dithiolenes", "metallodithiolenes" or "dithiolene complexes". Most molybdenum- and tungsten…

Metal dithiolene complex — main illustration
Metal dithiolene complex — illustration

Key takeaways

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  • Reproduce the core statement of Metal dithiolene complex from memory before moving on to harder problems.

Reference excerpt

Dithiolene metal complexes are complexes containing 1,2-dithiolene ligands. 1,2-Dithiolene ligands, a particular case of 1,2-dichalcogenolene species along with 1,2-diselenolene derivatives, are unsaturated bidentate ligand wherein the two donor atoms are sulfur. 1,2-Dithiolene metal complexes are often referred to as "metal dithiolenes", "metallodithiolenes" or "dithiolene complexes". Most molybdenum- and tungsten-containing proteins have dithiolene-like moieties at their active sites, which feature the so-called molybdopterin cofactor bound to the Mo or W. Dithiolene metal complexes have been studied since the 1960s when they were first popularized by Gerhard N. Schrauzer and Volker P. Mayweg, who prepared nickel bis(stilbene-1,2-dithiolate) (Ni(S2C2Ph2)2) by the reaction of nickel sulfide and diphenylacetylene. The structural, spectroscopic, and electrochemical properties of many related complexes have been described.

Structure Dithiolene metal complexes can be found in coordination compounds where the metal centre is coordinated by one, two, or three dithiolene ligands. The tris(dithiolene) complexes were the first examples of trigonal prismatic geometry in coordination chemistry. One example is Mo(S2C2Ph2)3. Similar structures have been observed for several other metals.

Because of the unusual redox and intense optical properties of dithiolenes, the electronic structure of dithiolene complexes has been the subject of intense studies. 1,2-Dithiolene ligands can exist in three oxidation states: the dianionic "ene-1,2-dithiolate", the neutral "1,2-dithioketone," and a monoanionic radical intermediate between these two. When the latter two are complexed to a metal centre, the oxidation state of the ligand (and therefore the metal centre) cannot be easily defined. Such ligands are therefore referred to as non-innocent. The substituents on the backbone of the dithiolene ligand, R and R′, affect the properties of the resulting metal complex in the expected way. Long chains confer solubility in less polar solvents. Electron acceptors (e.g. cyanide CN−, acetate CH3CO−2) stabilize reduced and anionic complexes. Derivatives are known where the substituents are the same, symmetrical dithiolenes (R = R′) are more common than unsymmetrical. Due to their delocalized electronic structure, 1,2-dithiolene complexes undergo reversible redox reaction. When oxidized, dithiolene complexes have greater 1,2-dithioketone character. In reduced complexes, the ligand assumes more ene-1,2-dithiolate character. These descriptions are evaluated by examination of differences in C–C and C–S bond distances. The true structure lies somewhere between these resonance structures. Reflecting the impossibility to provide an unequivocal description of the structure, McCleverty introduced the term 'dithiolene' to give a general name for the ligand that does not specify a particular oxidation state. This suggestion was generally accepted, and 'dithiolene' is now a universally accepted term. Only more recently the radical nature of monoanionic 1,2-dithiolene ligands has been pointed out. While few examples of authentic dithiolene radicals have been reported, diamagnetism in neutral bis(1,2-dithiolene) complexes of divalent transition metal ions should be considered as a consequence of a string antiferromagnetic coupling between the two radical ligands.

Applications and occurrence 1,2-Dithiolene metal complexes occur widely in nature in the form of the molybdopterin-bound Mo and W-containing enzymes.

1,2-Dithiolene complexes applications are numerous, and span from superconductivity, to linear and non linear optics, to biochemistry. Commercial applications of 1,2-dithiolene complexes are limited. A few dithiolene complexes have been commercialized as dyes in laser applications (Q-switching, mode-locking). 1,2-Dithiolene complexes have been discussed in the context of conductivity, magnetism, and nonlinear optics. It was proposed to use dithiolene metal complexes that bind unsaturated hydrocarbons at the sulfur centers for industrial olefin (alkene) purifications. However, the complexities within such systems became later apparent, and it was argued that more research would be needed before using metal dithiolene complexes in alkene purifications may become practical.

Preparation

From alkenedithiolates Most dithiolene complexes are prepared by reaction of alkali metal salts of 1,2-alkenedithiolates with metal halides. A thiolate is the conjugate base of a thiol, so alkenedithiolate is, formally speaking, the conjugate base of an alkenedithiol. Common alkenedithiolates are 1,3-dithiole-2-thione-4,5-dithiolate and maleonitriledithiolate (mnt2−):

Ni2+ + 2 (NC)2C2S2−2 → Ni[S2C2(CN)2]2−2 Some alkenedithiolates are generated in situ, often by complex organic reactions:

cis-H2C2(SCH2Ph)2 + 4 Na → cis-H2C2(SNa)2 + 2 NaCH2Ph Once generated, these anions are deployed as ligands:

NiCl2 + 2 cis-H2C2(SNa)2 → Na2[Ni(S2C2H2)2] + 2 NaCl Often the initially formed, electron-rich complex undergoes spontaneous air-oxidation:

2 [Ni(S2C2H2)2]2− + 4 H+ + O2 → 2 Ni(S2C2H2)2 + 2 H2O

From acyloins An early and still powerful method for the synthesis of dithiolenes entails the reaction of α-hydroxyketones, acyloins, with P4S10 followed by hydrolysis and treatment of the mixture with metal salts. This method is used to prepare Ni[S2C2Ar2]2 (Ar = aryl).

From dithietes Although 1,2-dithiones are rare and thus not useful precursors, their valence isomer, the 1,2-dithietes are occasionally used. One of the more common dithiete is the distillable (CF3)2C2S2. This electrophilic reagent oxidatively adds to many low valent metals to give bis- and tris(dithiolene) complexes.

Mo(CO)6 + 3 (CF3)2C2S2 → [(CF3)2C2S2]3Mo + 6 CO Ni(CO)4 + 2 (CF3)2C2S2 → [(CF3)2C2S2]2Ni + 4 CO

By reactions of metal sulfides with alkynes Species of the type Ni[S2C2Ar2]2 were first prepared by reactions of nickel sulfides with diphenylacetylene. More modern versions of this method entail the reaction of electrophilic acetylenes such as dimethyl acetylenedicarboxylate with well defined polysulfido complexes.

… excerpt ends here. Continue reading the full article.

Illustrations

Metal dithiolene complex: Structure of .mw-parser-output .template-chem2-su{display:inline-block;font-size:80%;line-height:1;vertical-align:-0.35em}.mw-parser-output .template-chem2-su>span{display:block;text-align:left}.mw-parser-output sub.template-chem2-sub{font-size:80%;vertical-align:-0.35em}.mw-parser-output sup.template-chem2-sup{font-size:80%;vertical-align:0.65em}Mo(S2C2Ph2)3
Structure of .mw-parser-output .template-chem2-su{display:inline-block;font-size:80%;line-height:1;vertical-align:-0.35em}.mw-parser-output .template-chem2-su>span{display:block;text-align:left}.mw-parser-output sub.template-chem2-sub{font-size:80%;vertical-align:-0.35em}.mw-parser-output sup.template-chem2-sup{font-size:80%;vertical-align:0.65em}Mo(S2C2Ph2)3
Metal dithiolene complex: Sample of (Et4N)2Ni(mnt)2, illustrating the intense color that typifies many dithiolene complexes
Sample of (Et4N)2Ni(mnt)2, illustrating the intense color that typifies many dithiolene complexes
Metal dithiolene complex: Limiting resonance structures of a C2S2M ring in a R2C2S2M compounds, where R stands typically for H, CN or organyl.
Limiting resonance structures of a C2S2M ring in a R2C2S2M compounds, where R stands typically for H, CN or organyl.
Metal dithiolene complex: Active site of the enzyme DMSO reductase features two pyranopterindithiolene ligands.[8]
Active site of the enzyme DMSO reductase features two pyranopterindithiolene ligands.[8]
Metal dithiolene complex: Structure of (C5H5)2Mo2(S2C2H2)2, featuring a bridging dithiolene ligand. It was prepared by the addition of acetylene to (C5H5)2Mo2S4.[13]
Structure of (C5H5)2Mo2(S2C2H2)2, featuring a bridging dithiolene ligand. It was prepared by the addition of acetylene to (C5H5)2Mo2S4.[13]

Worked examples

Example 1 — a first encounter with Metal dithiolene complex

Start with the simplest possible case. Write down what Metal dithiolene complex claims or describes in one sentence, then invent the smallest concrete situation in which that sentence is true. In science, the smallest case is usually a single object, a single equation or a single measurement. Check that every symbol or term in your sentence has a meaning in that case.

Example 2 — changing one variable

Take the situation from Example 1 and change exactly one quantity: double it, halve it, or set it to zero. Predict what should happen to Metal dithiolene complex before you calculate. Comparing your prediction with the result is the fastest way to find out whether you understand the idea or only the words.

Example 3 — an exam-style question

Typical questions about Metal dithiolene complex ask you to (a) state it precisely, (b) apply it to given data, and (c) explain a limitation. Practise writing all three answers in under five minutes; the third part is what separates a full-mark answer from an average one.

Applications of Metal dithiolene complex

In research
Metal dithiolene complex appears in science research whenever the underlying quantities have to be modelled precisely. Papers usually cite it as a starting assumption and then explore where it breaks down.
In technology and industry
Engineering practice reuses Metal dithiolene complex in design rules, simulations and safety margins. Knowing the idea lets you read a specification sheet and understand why the numbers look the way they do.
In the classroom
Metal dithiolene complex is common in secondary-school and first-year university syllabi. It links to neighbouring topics Chelating agents, Coordination complexes, Thiols, so understanding it makes those chapters shorter.
In everyday life
Look for Metal dithiolene complex outside the textbook — in sport, cooking, traffic, electronics or the sky above you. An example you found yourself is remembered far longer than one you were given.

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How to study Metal dithiolene complex in 20 minutes

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Frequently asked questions

What is Metal dithiolene complex in simple terms?

Dithiolene metal complexes are complexes containing 1,2-dithiolene ligands. 1,2-Dithiolene ligands, a particular case of 1,2-dichalcogenolene species along with 1,2-diselenolene derivatives, are unsaturated bidentate ligand wherein the two donor atoms are sulfur. 1,2-Dithiolene metal complexes are…

Why does Metal dithiolene complex matter?

Because it connects several science ideas at once: it gives you a definition you can apply, a quantity you can calculate, and a way to check whether a result is plausible.

How should I study Metal dithiolene complex?

Read the excerpt, restate it from memory, then work through the examples and applications listed on this page. The five-step study plan above takes about twenty minutes.

What does this page cover?

It gives you a compact reference excerpt plus original lgStudy explanations, examples, applications and study material on Metal dithiolene complex.

Tags

  • Chelating agents
  • Coordination complexes
  • Thiols

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