H2O2(s) and H2O2<middle dot>2H2O(s) crystals compared with ices: DFT functional assessment and D3 analysis

被引:4
|
作者
Arismendi-Arrieta, Daniel J. [1 ]
Sen, Anik [1 ]
Eriksson, Anders [1 ]
Broqvist, Peter [1 ]
Kullgren, Jolla [1 ]
Hermansson, Kersti [1 ]
机构
[1] Uppsala Univ, Dept Chem Angstrom, POB 530, S-75121 Uppsala, Sweden
来源
JOURNAL OF CHEMICAL PHYSICS | 2023年 / 159卷 / 19期
基金
瑞典研究理事会;
关键词
MOLECULAR-DYNAMICS SIMULATION; TOTAL-ENERGY CALCULATIONS; HYDROGEN-PEROXIDE; AB-INITIO; NEUTRON-DIFFRACTION; MAGNETIC-PROPERTIES; MONTE-CARLO; DENSITY; WATER; APPROXIMATION;
D O I
10.1063/5.0145203
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The H2O and H2O2 molecules resemble each other in a multitude of ways as has been noted in the literature. Here, we present density functional theory (DFT) calculations for the H2O2(s) and H2O2<middle dot>2H(2)O(s) crystals and make selected comparisons with ice polymorphs. The performance of a number of dispersion-corrected density functionals-both self-consistent and a posteriori ones-are assessed, and we give special attention to the D3 correction and its effects. The D3 correction to the lattice energies is large: for H2O2(s) the D3 correction constitutes about 25% of the lattice energy using PBE, much more for RPBE, much less for SCAN, and it primarily arises from non-H-bonded interactions out to about 5 & Aring;.The large D3 corrections to the lattice energies are likely a consequence of several effects: correction for missing dispersion interaction, the ability of D3 to capture and correct various other kinds of limitations built into the underlying DFT functionals, and finally some degree of cell-contraction-induced polarization enhancement. We find that the overall best-performing functionals of the twelve examined are optPBEvdW and RPBE-D3. Comparisons with DFT assessments for ices in the literature show that where the same methods have been used, the assessments largely agree.
引用
收藏
页数:15
相关论文
共 50 条
  • [41] Analysis of the Toxicity of Phenol Solutions Treated with H2O2/UV and H2O2/Fe Oxidative Systems
    De Luis, A. M.
    Lombrana, J. I.
    Menendez, A.
    Sanz, J.
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2011, 50 (04) : 1928 - 1937
  • [42] REACTIONS OF OH AND OD WITH H2O2 AND D2O2
    VAGHJIANI, GL
    RAVISHANKARA, AR
    COHEN, N
    JOURNAL OF PHYSICAL CHEMISTRY, 1989, 93 (23): : 7833 - 7837
  • [43] The thioredoxin and glutathione-dependent H2O2 consumption pathways in muscle mitochondria: Involvement in H2O2 metabolism and consequence to H2O2 efflux assays
    Munro, Daniel
    Banh, Sheena
    Sotiri, Emianka
    Tamanna, Nahid
    Treberg, Jason R.
    FREE RADICAL BIOLOGY AND MEDICINE, 2016, 96 : 334 - 346
  • [44] MEASUREMENTS OF H2O2+ IN THE D-REGION AND IMPLICATIONS FOR MESOSPHERIC H2O2
    Arnold, F.
    Krankowsky, D.
    GEOPHYSICAL RESEARCH LETTERS, 1974, 1 (06) : 243 - 245
  • [45] O3、O3/H2O2、O3/H2O2/UV去除水中六氯苯的研究
    王华
    吕锡武
    杨开明
    江元霞
    给水排水, 2007, (05) : 136 - 138
  • [46] PRODUCTION H2O2 ABROAD
    KOSAREVA, VF
    CHESALOVA, VS
    SHISHKINA, AP
    DERBENZEV, YI
    KHIMICHESKAYA PROMYSHLENNOST, 1977, (03): : 229 - 231
  • [47] ABETTER ROUTE TO H2O2
    Ritter, Steve
    CHEMICAL & ENGINEERING NEWS, 2014, 92 (05) : 5 - 5
  • [48] H2O2: A Dynamic Neuromodulator
    Rice, Margaret E.
    NEUROSCIENTIST, 2011, 17 (04): : 389 - 406
  • [49] H2O2 CONTROLS BULKING
    KELLER, PJ
    COLE, CA
    WATER & WASTES ENGINEERING, 1973, 10 (09): : E4 - &
  • [50] THE REACTION OF HEMIN WITH H2O2
    KREMER, ML
    EUROPEAN JOURNAL OF BIOCHEMISTRY, 1989, 185 (03): : 651 - 658