Cornell University
Library
Cornell UniversityLibrary

eCommons

Help
Log In(current)
  1. Home
  2. Cornell University Graduate School
  3. Cornell Theses and Dissertations
  4. INTRINSIC PHOTOCATALYTIC ACTIVITY OF TIO2 IN GAS PHASE CO2 REDUCTION: LIGHT COUPLING, MASS TRANSFER, AND MICROKINETICS MODELS.

INTRINSIC PHOTOCATALYTIC ACTIVITY OF TIO2 IN GAS PHASE CO2 REDUCTION: LIGHT COUPLING, MASS TRANSFER, AND MICROKINETICS MODELS.

File(s)
VignoloGonzalez_cornell_0058O_10129.pdf (4.46 MB)
Permanent Link(s)
https://doi.org/10.7298/X4SN074N
https://hdl.handle.net/1813/56773
Collections
Cornell Theses and Dissertations
Author
Vignolo Gonzalez, Hugo Alejandro
Abstract

Applications of photocatalytic CO2 reduction are limited by poor overall efficiency and slow reaction rates. In addition to such intrinsic material’s limitations, external influences decrease observed reaction rates still further. This work aims to quantify those external factors in a batch photocatalytic gas-phase reactor for CO2 reduction on P25 (TiO2), approaching to the intrinsic activity of the material under standard conditions. The proposed methodology addressed optical aspects of the reactor design to decouple the influence of light in observed reaction rates; as a thin film with an optical effectiveness of 67%, P25 showed a yield of 14.5 [μmoles-C-products g-1 h-1], which is at least 20 times higher compared to previous references. A transport model demonstrated the small influence of diffusion based on a dimensional analysis and perturbation expansion. As a final remark, reaction mechanisms were analyzed using Microkinetics Analysis (MKA), whose qualitative predictions explained reaction trends not captured by coarse-grain models.

Date Issued
2017-08-30
Keywords
Chemical engineering
•
Energy
•
CO2 reduction
•
Microkinetics
•
Photocatalysis
•
Reactor design
•
Solar Fuels
•
Transport Phenomena
•
sustainability
Committee Chair
Hanrath, Tobias
Committee Member
Escobedo, Fernando
Anton, Alan Brad
Degree Discipline
Chemical Engineering
Degree Name
M.S., Chemical Engineering
Degree Level
Master of Science
Type
dissertation or thesis

Site Statistics | Help

About eCommons | Policies | Terms of use | Contact Us

copyright © 2002-2026 Cornell University Library | Privacy | Web Accessibility Assistance