| Literature DB >> 21775812 |
Ian J Bruno1, Gregory P Shields, Robin Taylor.
Abstract
An improved algorithm has been developed forEntities:
Year: 2011 PMID: 21775812 PMCID: PMC3143025 DOI: 10.1107/S0108768111024608
Source DB: PubMed Journal: Acta Crystallogr B ISSN: 0108-7681
Figure 1CSD entries (a) GEBXOA, (b) HEWMOL, where the stoichiometry is 4(C12H24O6Tl+), Cl4Mn2−, 2(Cl4Tl−), (c) YAZZOP (left) and BALTUE (right), (d) BAPYEX, where the stoichiometry is C26H22Fe, 2(C12F4N4 −), 2(C6H5Cl), (e) VOMNUH (left) and VOMPAP (right), and (f) XONQIB. All structure assignments are as in the CSD, but the metal–metal bond in GEBXOA is actually of half-integral bond order (2.5).
Figure 2Structure of OFIKOD, (Ph2PCH2CH2PPh2)Pt(H)(C3F7). The coordination around the Pt atom is incomplete because a hydride ligand was not located.
Figure 3Structures of XOLSIB, Dy2(C14H11N3O3)2(NO3)2(MeOH)2 (top), and VOLSAR, BuN=Nb(OPr)(C29H40N2) (bottom). In both structures, the metal atoms appear to be bonded to alkoxide ligands (shown in ball-and-stick style). In the former, however, the ligand is actually unionized methanol, the alcoholic H atom having not been located.
Figure 4Structure of NOLZOE, [(Ph3P)2Pd(PhCH=CHC(Me)=O—Al(Me)Cl2]·C4H8O, showing a solvent molecule that is actually tetrahydrofuran despite its apparent near-planar geometry (no H atoms were located).
Figure 5Part of the structure of QEHLOF, showing a twofold disordered tert-butyl group. Carbon positions are reported for both configurations of the disordered group but hydrogen positions for only one configuration.
Figure 6Crystal packing in the structure of DEHMAF, [(1,4,7-triazacyclononane)-Cu-(N3)2-Cu-(1,4,7-triazacyclononane)][ClO]·MeOH. The two C—O fragments at the centre of the figure are related by an inversion centre and could correspond to half-occupancy ethane-1,2-diol or methanol disordered by symmetry over two sites (no solvent H atoms were located). The solvent is actually methanol.
Figure 7Sulfate ion in AHALEA. The sulfur and one full-occupancy O atom lie on a fourfold axis (shown), resulting in four disordered configurations.
Figure 8Structure of DIJWEZ, Na(H2O)·Cr30Mo72C38H245O384·120H2O (disordered atoms and waters omitted). The ion at the top of the figure is dodecaaqua-sodium, obviously a monocation, leaving the question as to where the balancing negative charge on the keplarate ion should be placed.
Figure 9Histogram of (a) Ag—Ag bond distances and (b) Ag—Ag non-bonded contact distances (intramolecular and intermolecular) in the CSD.
Figure 10Two possible choices for the polymer unit of XOJWUP, [Zn3(C7H4PO5)2(NH2CH2CH2NH2)2] (H atoms omitted for clarity): at the top, the unit found by the algorithm reported herein; at the bottom the smaller unit chosen by CSD editors. Although unnecessarily large, the former arguably gives a clearer picture of the bonding. Some peripheral atoms in both representations are ‘link atoms’, i.e. atoms of adjacent units of the polymer.
Figure 11Polymer unit of VOQBUZ, [Cd(C10H8N2)(CHO2)2]. Only one of the two formato ligands required to maintain stoichiometry is generated by initial symmetry expansion using non-translational symmetry operators. The problem is detected, and symmetry expansion repeated, allowing a limited number of translational operators.
Figure 12CSD entry MIJFOA. All H atoms were located except those of the acetonitrile molecule, the geometry of which is very bent (C—C—N angle of 135.3°).
Statistics for complete-molecule untyped fragment CCN
S.d. = standard deviation (default values used for CH3CH2NH2).
| Bond-type option | CCN | CCN | ||
|---|---|---|---|---|
| Atom-property option | CH3CN | CH3CH2NH | CH3CH2NH2 | |
| No. observations | 5102 | 40 | 4 | |
| CCN angle () | Mean | 175.02 | 113.76 | 113.05 |
| S.d. | 8.23 | 6.20 | 4.00 | |
| CC distance () | Mean | 1.432 | 1.473 | 1.497 |
| S.d. | 0.082 | 0.120 | 0.040 | |
| CN distance () | Mean | 1.142 | 1.488 | 1.505 |
| S.d. | 0.080 | 0.060 | 0.040 | |
Criteria used to set structure-assignment reliability score
| Score = 0 if any of: |
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| Score = 1 if none of the above and any of: |
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| Score = 2 if none of the above and any of: |
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| Score = 3 if none of the above. |
Typical diagnostic report from structure-assignment program
| Oxidation states (template method): |
| Pt1 1, Pt2 1 |
| Oxidation states (BVS method): |
| Pt1 2.0, Pt2 2.0 |
| Low probability oxidation states: |
| Pt2, prob = 0.009 |
| Pt1, prob = 0.009 |
| Electron counts (template method): |
| Pt1 15, Pt2 15 |
| Low probability bond lengths: |
| F14C58 1.515, av(CSD) = 1.319, prob = 0.001 |
| F10C57 1.673, av(CSD) = 1.319, prob = 0.001 |
| C57C56 1.603, av(CSD) = 1.527, prob = 0.002 |
| Reliability level = 1 |
Figure 13Two representations of a palladium complex implying different metal oxidation states.
Validation results: numbers and percentages of identical, acceptable and incorrect structure assignments, broken down by reliability level
| Counts (percentages) | ||||
|---|---|---|---|---|
| Reliability level | Total | Identical | Acceptable | Incorrect |
| 3 | 408 | 398 (97.5%) | 2 (0.5%) | 8 (2.0%) |
| 2 | 733 | 531 (72.4%) | 112 (15.3%) | 90 (12.3%) |
| 1 | 425 | 124 (29.2%) | 97 (22.8%) | 204 (48.0%) |
| 0 | 211 | 36 (17.1%) | 11 (5.2%) | 164 (77.7%) |
| All | 1777 | 1089 (61.3%) | 222 (12.5%) | 466 (26.2%) |
See text for definition of identical, acceptable, incorrect.
Causes of incorrect assignments, broken down by reliability level
| Number of incorrect assignments caused by failures in | |||||
|---|---|---|---|---|---|
| Reliability level | CIF | Disorder resolution | Bond detection | Bond types, atom charges | Bug |
| 3 | 3 | 3 | 0 | 2 | 0 |
| 2 | 22 | 24 | 29 | 17 | 3 |
| 1 | 29 | 24 | 48 | 113 | 5 |
| 0 | 9 | 87 | 28 | 50 | 2 |
| All | 63 | 138 | 105 | 182 | 10 |
CIF = incomplete or grossly inaccurate information in the CIF.
Some incorrect assignments were ascribed to more than one cause.