TY - JOUR
T1 - Kinetic rates of thermal transformations and diffusion in polymer systems measured during sub-millisecond laser-induced heating
AU - Jung, Byungki
AU - Sha, Jing
AU - Paredes, Florencia
AU - Chandhok, Manish
AU - Younkin, Todd R.
AU - Wiesner, Ulrich
AU - Ober, Christopher K.
AU - Thompson, Michael O.
PY - 2012/7/24
Y1 - 2012/7/24
N2 - Probing chemical reaction kinetics in the near-solid state (small molecules and polymers) is extremely challenging because of the restricted mobility of reactant species, the absence of suitable analytical probes, and most critically the limited temperature stability of the materials. By limiting temperature exposure to extremely short time frames (sub-millisecond), temperatures in excess of 800 °C can be accessed extending kinetic rate measurements many orders of magnitude. Here we demonstrate measurements on a model system, exploiting the advantages of thin-films, laser heating, and chemically amplified resists as an exquisite probe of chemical kinetic rates. Chemical reaction and acid diffusion rates were measured over 10 orders of magnitude, exposing unexpected and large changes in dynamics linked to critical mechanism shifts across temperature regimes. This new approach to the study of kinetics in near-solid state materials promises to substantially improve our understanding of processes active in a broad range of temperature-sensitive, low-mobility materials.
AB - Probing chemical reaction kinetics in the near-solid state (small molecules and polymers) is extremely challenging because of the restricted mobility of reactant species, the absence of suitable analytical probes, and most critically the limited temperature stability of the materials. By limiting temperature exposure to extremely short time frames (sub-millisecond), temperatures in excess of 800 °C can be accessed extending kinetic rate measurements many orders of magnitude. Here we demonstrate measurements on a model system, exploiting the advantages of thin-films, laser heating, and chemically amplified resists as an exquisite probe of chemical kinetic rates. Chemical reaction and acid diffusion rates were measured over 10 orders of magnitude, exposing unexpected and large changes in dynamics linked to critical mechanism shifts across temperature regimes. This new approach to the study of kinetics in near-solid state materials promises to substantially improve our understanding of processes active in a broad range of temperature-sensitive, low-mobility materials.
KW - acid diffusion
KW - chemically amplified resists
KW - laser spike annealing
KW - side-chain cleavage kinetics
KW - submillisecond kinetics
UR - https://www.scopus.com/pages/publications/84864226092
U2 - 10.1021/nn300008a
DO - 10.1021/nn300008a
M3 - Article
AN - SCOPUS:84864226092
SN - 1936-0851
VL - 6
SP - 5830
EP - 5836
JO - ACS Nano
JF - ACS Nano
IS - 7
ER -