{"id":{"repo_id":"njit","oai_identifier":"oai:digitalcommons.njit.edu:theses-1530"},"canonical_url":"https://search.dev.ndltd.org/etd/njit/oai:digitalcommons.njit.edu:theses-1530","repository":{"repo_id":"njit","name":"NJIT","base_url":"https://digitalcommons.njit.edu/do/oai/"},"display":{"title":"Kinetics of HO2 abstraction of H atoms from hydrocarbons and thermochemical properties of urethane monomers and radicals","abstract":"SECTION I: Kinetics of HO_2 Abstraction of H Atoms From Hydrocarbons Structures, internal rotational barriers and ideal gas thermochemical properties, [Delta]H_{f98} for representative series of transition states for abstraction of H atoms from primary, secondary and tertiary hydrocarbons by the HO_2 radical, TC-HOOH (1), TCC-HOOH (2), TC_2C-HOOH (3), TC_3C-HOOH (4), TC_2CC-HOOH (5), TC_2CC-HOOHC (6) and TC_3CCC-HOOH (7) are analyzed in this study. Molecular structures and vibrational frequencies are determined at the B3LYP/6-3111G(d,p) density functional level. The S _{298} and C_p(T) values (300<=T/K<=1500) from vibrational, translational, and external rotational contributions are calculated using statistical mechanics based on the vibrational frequencies and structures obtained from the density functional study. Internal rotor contributions are included in the S and C_P(T) values. [Delta]Ht ,_{TS} of the transition states are computed at the G3MP2 level. The forward and reverse rate constants are calculated for the transition state reactions (1) to (7). [Delta]H_{rxn} of these paths are estimated. [Delta]Ht ,_{TS} of species 1, 2, 3, 4 and 5 are also calculated at CBS-Q//B3LYP/6-311G(d,p) level and compared with the G3MP2 results. SECTION II: Thermochemical Properties, Enthalpy, Entropy and Heat Capacity (T) for Model Urethane Monomers and Corresponding Radicals. Two separate model urethanes (carbamates), Ethyl N Ethyl carbamate [C-C-N-C(O)-OC-C] and N (n-propyl) methylcarbamate [C-C-C-N-C(O)-O-C] are utilized to investigate the thermochemical properties and bond energies in several model urethane monomers. Molecular structure, vibration frequencies, energies, enthalpies ([Delta]H_{f(298)}) and bond energies are determined for the molecules and radicals at the B3LYP/6-31 G(d,p) Density Functional Calculation Level. Entropy (S[Delta]_{(298)}) and heat capacity C_P(T) are determined from the above structures and vibration frequencies. Enthalpies of formation ([Delta]_fH_{f(298)}) are estimated using total energies including zero point vibrational energy (ZPVE), thermal contributions for each species and the calculated [Delta]H_{rxn} from isodesmic- working reactions. Bond energies are also calculated. The enthalpy values calculated at the B3LYP/6-31 G(d,p) level for C-C-N-C(O)-O-C-C and C-C-C-N-C(O)-O-C are -115.08 and -113.34 kcal/mol, respectively. Carbon and nitrogen - hydrogen bond energies, calculated in this study are: 453.2 (kJ.mol) for C-C-N_j-C(O)-O-C-C, 400.3 (kJ.mol) for C-C_j-N-C(O)-O-C-C, 430.1 (kJ.mol) for C-C-N-C(O)-O-C-C, 429.4 (kJ.mol) for C-C-NC(O)-O-C_j-C, 439.9 (kJ.mol) for C-C-N-C(O)-O-C-C~, 452.7 (kJ.mol) for C-C-C-NiC(O)-O-C, 401.7 (kJ.mol) for C-C-C_j-N-C(O)-O-C, where j represents the radical site.","abstract_html":"SECTION I: Kinetics of HO_2 Abstraction of H Atoms From Hydrocarbons Structures, internal rotational barriers and ideal gas thermochemical properties, [Delta]H_{f98} for representative series of transition states for abstraction of H atoms from primary, secondary and tertiary hydrocarbons by the HO_2 radical, TC-HOOH (1), TCC-HOOH (2), TC_2C-HOOH (3), TC_3C-HOOH (4), TC_2CC-HOOH (5), TC_2CC-HOOHC (6) and TC_3CCC-HOOH (7) are analyzed in this study. Molecular structures and vibrational frequencies are determined at the B3LYP/6-3111G(d,p) density functional level. The S _{298} and C_p(T) values (300&lt;=T/K&lt;=1500) from vibrational, translational, and external rotational contributions are calculated using statistical mechanics based on the vibrational frequencies and structures obtained from the density functional study. Internal rotor contributions are included in the S and C_P(T) values. [Delta]Ht ,_{TS} of the transition states are computed at the G3MP2 level. The forward and reverse rate constants are calculated for the transition state reactions (1) to (7). [Delta]H_{rxn} of these paths are estimated. [Delta]Ht ,_{TS} of species 1, 2, 3, 4 and 5 are also calculated at CBS-Q//B3LYP/6-311G(d,p) level and compared with the G3MP2 results. SECTION II: Thermochemical Properties, Enthalpy, Entropy and Heat Capacity (T) for Model Urethane Monomers and Corresponding Radicals. Two separate model urethanes (carbamates), Ethyl N Ethyl carbamate [C-C-N-C(O)-OC-C] and N (n-propyl) methylcarbamate [C-C-C-N-C(O)-O-C] are utilized to investigate the thermochemical properties and bond energies in several model urethane monomers. Molecular structure, vibration frequencies, energies, enthalpies ([Delta]H_{f(298)}) and bond energies are determined for the molecules and radicals at the B3LYP/6-31 G(d,p) Density Functional Calculation Level. Entropy (S[Delta]_{(298)}) and heat capacity C_P(T) are determined from the above structures and vibration frequencies. Enthalpies of formation ([Delta]_fH_{f(298)}) are estimated using total energies including zero point vibrational energy (ZPVE), thermal contributions for each species and the calculated [Delta]H_{rxn} from isodesmic- working reactions. Bond energies are also calculated. The enthalpy values calculated at the B3LYP/6-31 G(d,p) level for C-C-N-C(O)-O-C-C and C-C-C-N-C(O)-O-C are -115.08 and -113.34 kcal/mol, respectively. Carbon and nitrogen - hydrogen bond energies, calculated in this study are: 453.2 (kJ.mol) for C-C-N_j-C(O)-O-C-C, 400.3 (kJ.mol) for C-C_j-N-C(O)-O-C-C, 430.1 (kJ.mol) for C-C-N-C(O)-O-C-C, 429.4 (kJ.mol) for C-C-NC(O)-O-C_j-C, 439.9 (kJ.mol) for C-C-N-C(O)-O-C-C~, 452.7 (kJ.mol) for C-C-C-NiC(O)-O-C, 401.7 (kJ.mol) for C-C-C_j-N-C(O)-O-C, where j represents the radical site.","abstract_has_math":false,"creators":["Shah, Rajul"],"institution":null,"degree_name":"Master of Science in Chemical Engineering - (M.S.)","degree_level":null,"degree_discipline":"Chemical Engineering","degree_department":null,"school":null,"contributors":["Joseph W. Bozzelli","Norman W. Loney","Laurent Simon"],"advisors":[],"committee_chairs":[],"committee_members":[],"year":2004,"date_issued":"2004-01-31T08:00:00Z","date_published":"2004-01-31T08:00:00Z","updated_at":"2026-07-24T03:23:27Z","subjects":["Urethane monomers","Kinetics","Water abstraction","Chemical Engineering"],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://digitalcommons.njit.edu/theses/531","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor","label":"Contributor","values":["Joseph W. Bozzelli","Norman W. Loney","Laurent Simon"]},{"key":"dc:creator","label":"Author","values":["Shah, Rajul"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Chemical Engineering"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Master of Science in Chemical Engineering - (M.S.)"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Urethane monomers","Kinetics","Water abstraction","Chemical Engineering"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["https://digitalcommons.njit.edu/theses/531"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["SECTION I: Kinetics of HO_2 Abstraction of H Atoms From Hydrocarbons Structures, internal rotational barriers and ideal gas thermochemical properties, [Delta]H_{f98} for representative series of transition states for abstraction of H atoms from primary, secondary and tertiary hydrocarbons by the HO_2 radical, TC-HOOH (1), TCC-HOOH (2), TC_2C-HOOH (3), TC_3C-HOOH (4), TC_2CC-HOOH (5), TC_2CC-HOOHC (6) and TC_3CCC-HOOH (7) are analyzed in this study. Molecular structures and vibrational frequencies are determined at the B3LYP/6-3111G(d,p) density functional level. The S _{298} and C_p(T) values (300<=T/K<=1500) from vibrational, translational, and external rotational contributions are calculated using statistical mechanics based on the vibrational frequencies and structures obtained from the density functional study. Internal rotor contributions are included in the S and C_P(T) values. [Delta]Ht ,_{TS} of the transition states are computed at the G3MP2 level. The forward and reverse rate constants are calculated for the transition state reactions (1) to (7). [Delta]H_{rxn} of these paths are estimated. [Delta]Ht ,_{TS} of species 1, 2, 3, 4 and 5 are also calculated at CBS-Q//B3LYP/6-311G(d,p) level and compared with the G3MP2 results. SECTION II: Thermochemical Properties, Enthalpy, Entropy and Heat Capacity (T) for Model Urethane Monomers and Corresponding Radicals. Two separate model urethanes (carbamates), Ethyl N Ethyl carbamate [C-C-N-C(O)-OC-C] and N (n-propyl) methylcarbamate [C-C-C-N-C(O)-O-C] are utilized to investigate the thermochemical properties and bond energies in several model urethane monomers. Molecular structure, vibration frequencies, energies, enthalpies ([Delta]H_{f(298)}) and bond energies are determined for the molecules and radicals at the B3LYP/6-31 G(d,p) Density Functional Calculation Level. Entropy (S[Delta]_{(298)}) and heat capacity C_P(T) are determined from the above structures and vibration frequencies. Enthalpies of formation ([Delta]_fH_{f(298)}) are estimated using total energies including zero point vibrational energy (ZPVE), thermal contributions for each species and the calculated [Delta]H_{rxn} from isodesmic- working reactions. Bond energies are also calculated. The enthalpy values calculated at the B3LYP/6-31 G(d,p) level for C-C-N-C(O)-O-C-C and C-C-C-N-C(O)-O-C are -115.08 and -113.34 kcal/mol, respectively. Carbon and nitrogen - hydrogen bond energies, calculated in this study are: 453.2 (kJ.mol) for C-C-N_j-C(O)-O-C-C, 400.3 (kJ.mol) for C-C_j-N-C(O)-O-C-C, 430.1 (kJ.mol) for C-C-N-C(O)-O-C-C, 429.4 (kJ.mol) for C-C-NC(O)-O-C_j-C, 439.9 (kJ.mol) for C-C-N-C(O)-O-C-C~, 452.7 (kJ.mol) for C-C-C-NiC(O)-O-C, 401.7 (kJ.mol) for C-C-C_j-N-C(O)-O-C, where j represents the radical site."]},{"key":"dc:title","label":"Title","values":["Kinetics of HO2 abstraction of H atoms from hydrocarbons and thermochemical properties of urethane monomers and radicals"]}]}],"canonical_facts":{"dc:contributor":["Joseph W. Bozzelli","Norman W. Loney","Laurent Simon"],"dc:creator":["Shah, Rajul"],"dc:description.abstract":["SECTION I: Kinetics of HO_2 Abstraction of H Atoms From Hydrocarbons Structures, internal rotational barriers and ideal gas thermochemical properties, [Delta]H_{f98} for representative series of transition states for abstraction of H atoms from primary, secondary and tertiary hydrocarbons by the HO_2 radical, TC-HOOH (1), TCC-HOOH (2), TC_2C-HOOH (3), TC_3C-HOOH (4), TC_2CC-HOOH (5), TC_2CC-HOOHC (6) and TC_3CCC-HOOH (7) are analyzed in this study. Molecular structures and vibrational frequencies are determined at the B3LYP/6-3111G(d,p) density functional level. The S _{298} and C_p(T) values (300<=T/K<=1500) from vibrational, translational, and external rotational contributions are calculated using statistical mechanics based on the vibrational frequencies and structures obtained from the density functional study. Internal rotor contributions are included in the S and C_P(T) values. [Delta]Ht ,_{TS} of the transition states are computed at the G3MP2 level. The forward and reverse rate constants are calculated for the transition state reactions (1) to (7). [Delta]H_{rxn} of these paths are estimated. [Delta]Ht ,_{TS} of species 1, 2, 3, 4 and 5 are also calculated at CBS-Q//B3LYP/6-311G(d,p) level and compared with the G3MP2 results. SECTION II: Thermochemical Properties, Enthalpy, Entropy and Heat Capacity (T) for Model Urethane Monomers and Corresponding Radicals. Two separate model urethanes (carbamates), Ethyl N Ethyl carbamate [C-C-N-C(O)-OC-C] and N (n-propyl) methylcarbamate [C-C-C-N-C(O)-O-C] are utilized to investigate the thermochemical properties and bond energies in several model urethane monomers. Molecular structure, vibration frequencies, energies, enthalpies ([Delta]H_{f(298)}) and bond energies are determined for the molecules and radicals at the B3LYP/6-31 G(d,p) Density Functional Calculation Level. Entropy (S[Delta]_{(298)}) and heat capacity C_P(T) are determined from the above structures and vibration frequencies. Enthalpies of formation ([Delta]_fH_{f(298)}) are estimated using total energies including zero point vibrational energy (ZPVE), thermal contributions for each species and the calculated [Delta]H_{rxn} from isodesmic- working reactions. Bond energies are also calculated. The enthalpy values calculated at the B3LYP/6-31 G(d,p) level for C-C-N-C(O)-O-C-C and C-C-C-N-C(O)-O-C are -115.08 and -113.34 kcal/mol, respectively. Carbon and nitrogen - hydrogen bond energies, calculated in this study are: 453.2 (kJ.mol) for C-C-N_j-C(O)-O-C-C, 400.3 (kJ.mol) for C-C_j-N-C(O)-O-C-C, 430.1 (kJ.mol) for C-C-N-C(O)-O-C-C, 429.4 (kJ.mol) for C-C-NC(O)-O-C_j-C, 439.9 (kJ.mol) for C-C-N-C(O)-O-C-C~, 452.7 (kJ.mol) for C-C-C-NiC(O)-O-C, 401.7 (kJ.mol) for C-C-C_j-N-C(O)-O-C, where j represents the radical site."],"dc:identifier":["https://digitalcommons.njit.edu/theses/531"],"dc:subject":["Urethane monomers","Kinetics","Water abstraction","Chemical Engineering"],"dc:title":["Kinetics of HO2 abstraction of H atoms from hydrocarbons and thermochemical properties of urethane monomers and radicals"],"dc:type":["Thesis"],"thesis:degree_discipline":["Chemical Engineering"],"thesis:degree_name":["Master of Science in Chemical Engineering - (M.S.)"]},"updated_at":"2026-07-24T03:23:27Z"}