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Ammonia-modified Co(ii) sites in zeolites: spin and electron density
Ammonia-modified Co(ii) sites in zeolites: spin and electron density

... to the relevant part of (T12)1Al (compare Fig. 1 and Fig. S2, ESI†) due to either symmetry constraints (indispensable to avoid spurious hydrogen bonding in small clusters) or fixed positions of hydrogen atoms, leading to C1 symmetry for large clusters. Nevertheless, the comparison of geometry parame ...
CHAPTER 1 INTRODUCTION 1.1 Research Background
CHAPTER 1 INTRODUCTION 1.1 Research Background

To do List - kurtniedenzu
To do List - kurtniedenzu

REACTIONS OF IRON(II)
REACTIONS OF IRON(II)

first line of title - University of Delaware
first line of title - University of Delaware

The elements of the first transition series
The elements of the first transition series

... The IV state is the most important state for Ti  main chemistry is that ofTiO2 and TiCl4 and derivatives  VCI4, the main VIV chemistry is that of the  oxovanadium(IV) or vanadyl ion VO2+.  ion can behave like an M2+ ion, forms many complexes  cationic, neutral, or  anionic, depending on the ligand.  ...
Excited state properties of lanthanide complexes: Beyond ff states
Excited state properties of lanthanide complexes: Beyond ff states

Hard and Soft Acids and Bases
Hard and Soft Acids and Bases

Theoretical investigation of sodium and magnesium atom
Theoretical investigation of sodium and magnesium atom

... reported by Kochanski and PrissetteI2 at the correlation level. This is due to the larger basis sets and higher order of perturbation theory used in this study. Our Mg-0 distance (2.32 A) is also significantly longer than the 2.06 A which they report. B. Vibrational Frequencies. Vibrational frequenc ...
Transition metal chemistry
Transition metal chemistry

Solution
Solution

Oxidative addition of methane and benzene C–H bonds
Oxidative addition of methane and benzene C–H bonds

Second-Sphere Contributions to Substrate-Analogue
Second-Sphere Contributions to Substrate-Analogue

... nature of the yellow and pink low-temperature azide adducts of iron(III) superoxide dismutase (N3-FeSOD), which have been known for more than two decades. Variable-temperature variable-field magnetic circular dichroism (MCD) data suggest that both species possess similar ferric centers with a single ...
Dark-Field Oxidative Addition-Based Chemosensing: New Bis-cyclometalated Pt(II) Complexes and Phosphorescent
Dark-Field Oxidative Addition-Based Chemosensing: New Bis-cyclometalated Pt(II) Complexes and Phosphorescent

Coordination Chemistry
Coordination Chemistry

... HIGH-SPIN COMPLEX – A complex with a small splitting energy, resulting in electrons distributing into all of the d orbitals, and producing a high number of unpaired electrons Because of the small splitting energy, the d electrons remain unpaired as long as possible, causing the complex to be paramag ...
Homework Set 7
Homework Set 7

... require you to quantitatively compare energies. The electron configuration of CO is given in Gray on page 100. ...
Template Synthesis and Characterization of Macrocyclic Complexes
Template Synthesis and Characterization of Macrocyclic Complexes

Complex Ion Formation
Complex Ion Formation

... A complex ion consists of a central metal ion surrounded by some number of molecules or other ions (called LIGANDS) Ex: simple ligands include water (aquo), ammonia (ammine), chloride (chloro), cyanide (cyano), and hydroxide (hydroxo) ions. Ex: [Co(NH3)6]Cl3 COUNTER IONS can be found around the comp ...
Magnetic Exchange Coupling in Actinide
Magnetic Exchange Coupling in Actinide

Stability of Coordination Compounds
Stability of Coordination Compounds

Carbon-Encapsulated Magnetic Nanoparticles Based on Fe, Mn
Carbon-Encapsulated Magnetic Nanoparticles Based on Fe, Mn

... Cota-Sanchez, J. Szczytko, A. Twardowski, Nanotechnology 18, 145608 (2007). [16] M. Bystrzejewski, H. Lange, A. Huczko, Fullerenes, Nanotubes and Carbon Nanostructures 15, 167 (2007). [17] E. Sasioglu, I. Galanakis, L.M. Sandratskii, P. Bruno, J. Phys., Condens. Matter ...
Formation of rare earth metal complexes with Zonisamide in
Formation of rare earth metal complexes with Zonisamide in

... suggested by Irving and Rossoti. The result reveals that the complexation curve bifurcate at lower pH, which indicate the formation of complexes. Further since there was no precipitation of hydrides at higher pH indicating strong tendency of ligand towards metal ions for complexation. The overall st ...
Chemical Dynamics, Thermochemistry, and Quantum Chemistry
Chemical Dynamics, Thermochemistry, and Quantum Chemistry

... Plot the temperature versus time data on a full scale graph. Draw straight lines (not necessarily flat) through both the initial and final temperature baselines. These need not be parallel to one another or have zero slope. ...
Synthesis and Characterization of Lanthanide complexes
Synthesis and Characterization of Lanthanide complexes

Complexometric Titrations
Complexometric Titrations

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Spin crossover



Spin Crossover (SCO), sometimes referred to as spin transition or spin equilibrium behavior, is a phenomenon that occurs in some metal complexes wherein the spin state of the complex changes due to external stimuli such as a variation of temperature, pressure, light irradiation or an influence of a magnetic field.With regard to a ligand field and ligand field theory, the change in spin state is a transition from a low spin (LS) ground state electron configuration to a high spin (HS) ground state electron configuration of the metal’s d atomic orbitals (AOs), or vice versa. The magnitude of the ligand field splitting along with the pairing energy of the complex determines whether it will have a LS or HS electron configuration. A LS state occurs because the ligand field splitting (Δ) is greater than the pairing energy of the complex (which is an unfavorable process).Figure 1 is a simplified illustration of the metal’s d orbital splitting in the presence of an octahedral ligand field. A large splitting between the t2g and eg AOs requires a substantial amount of energy for the electrons to overcome the energy gap (Δ) to comply with Hund’s Rule. Therefore, electrons will fill the lower energy t2g orbitals completely before populating the higher energy eg orbitals. Conversely, a HS state occurs with weaker ligand fields and smaller orbital splitting. In this case the energy required to populate the higher levels is substantially less than the pairing energy and the electrons fill the orbitals according to Hund’s Rule by populating the higher energy orbitals before pairing with electrons in the lower lying orbitals. An example of a metal ion that can exist in either a LS or HS state is Fe3+ in an octahedral ligand field. Depending on the ligands that are coordinated to this complex the Fe3+ can attain a LS or a HS state, as in Figure 1.Spin crossover refers to the transitions between high to low, or low to high, spin states. This phenomenon is commonly observed with some first row transition metal complexes with a d4 through d7 electron configuration in an octahedral ligand geometry. Spin transition curves are a common representation of SCO phenomenon with the most commonly observed types depicted in Figure 2 in which γHS (the high-spin molar fraction) is plotted vs. T. The figure shows a gradual spin transition (left), an abrupt transition with hysteresis (middle) and a two-step transition (right). For a transition to be considered gradual, it typically takes place over a large temperature range, even up to several hundred K, whereas for a transition to be considered abrupt, it should take place within 10 K or less.These curves indicate that a spin transition has occurred in a metal complex as temperature changed. The gradual transition curve is an indication that not all metal centers within the complex are undergoing the transition at the same temperature. The abrupt spin change with hysteresis indicates a strong cooperativity, or “communication”, between neighboring metal complexes. In the latter case, the material is bistable and can exist in the two different spin states with a different range of external stimuli (temperature in this case) for the two phenomena, namely LS → HS and HS → LS. The two-step transition is relatively rare but is observed, for example, with dinuclear SCO complexes for which the spin transition in one metal center renders the transition in the second metal center less favorable.There are several types of spin crossover that can occur in a complex; some of them are light induced excited state spin trapping (LIESST), ligand-driven light induced spin change (LD-LISC), and charge transfer induced spin transition (CTIST).
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