The first principle quantum chemistry methods are widely used in molecular modeling studies in biology, chemistry and material science. Among the quantum chemistry models, density functional theory (DFT) offers a right balance between computational cost and accuracy and accounts for the majority use in biological researches. In this project, we are proposing a technology that is aimed at reducing significantly the computational cost of the evaluation of the exchange-correlation contribution, which is the most time consuming step in a DFT calculation. This technology is to take the advantage of the nature of the iteration process of the DFT calculation and computes the desired quantities through the differences of variables between iterations. In this Phase I feasibility study the goal is to develop the algorithm for the basic local functionals with closed-shell systems. The potentials & problems will be identified for the further studies in Phase II, in which the technology will be implemented for gradient-corrected functionals with closed-shell and open-shell systems. If successful, this improvement will substantially enhance the productivity of computational researches, and enable researchers to study larger systems with the same amount of computational cost.

Proposed Commercial Applications

DFT is the most widely used quantum chemistry model in computational researches. The success of this project will enhance significantly the productivity and efficiency of molecular modeling researches at universities and industrial, governmental research facilities.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Small Business Innovation Research Grants (SBIR) - Phase I (R43)
Project #
1R43GM062053-01
Application #
6210369
Study Section
Special Emphasis Panel (ZRG1-SSS-6 (01))
Program Officer
Flicker, Paula F
Project Start
2000-08-01
Project End
2001-07-31
Budget Start
2000-08-01
Budget End
2001-07-31
Support Year
1
Fiscal Year
2000
Total Cost
$100,000
Indirect Cost
Name
Q-Chem, Inc.
Department
Type
DUNS #
837635556
City
Pittsburgh
State
PA
Country
United States
Zip Code
15213
Chiang, Chi-Tung; Shores, Kevin S; Freindorf, Marek et al. (2008) Size-restricted proton transfer within toluene-methanol cluster ions. J Phys Chem A 112:11559-65