TY - JOUR
T1 - Phosphorescent Oxygen and Mechanosensitive Nanostructured Materials Based on Hard Elastic Polypropylene Films
AU - Okkelman, Irina A.
AU - Dolgova, Alla A.
AU - Banerjee, Swagata
AU - Kerry, Joseph P.
AU - Volynskii, Aleksandr
AU - Arzhakova, Olga V.
AU - Papkovsky, Dmitri B.
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/4/19
Y1 - 2017/4/19
N2 - It is well known that sensitivity of quenched-phosphorescence O2 sensors can be tuned by changing the nature of indicator dye and host polymer acting as encapsulation and quenching mediums. Here, we describe a new type of sensor materials based on nanostructured hard elastic polymeric substrates. With the example of hard elastic polypropylene films impregnated with Pt-benzoporphyrin dye, we show that such substrates enable simple one-step fabrication of O2 sensors by standard and scalable polymer processing technologies. In addition, the resulting sensor materials show prominent response to tensile drawing via changes in phosphorescence intensity and lifetime and O2 quenching constant, Kq. The mechanosensitive response shows reversibility and hysteresis, which are related to macroscopic changes in the nanoporous structure of the polymer. Such multifunctional materials can find use as mechanically tunable O2 sensors, as well as strain/deformation sensors operating in a phosphorescence-lifetime-based detection mode.
AB - It is well known that sensitivity of quenched-phosphorescence O2 sensors can be tuned by changing the nature of indicator dye and host polymer acting as encapsulation and quenching mediums. Here, we describe a new type of sensor materials based on nanostructured hard elastic polymeric substrates. With the example of hard elastic polypropylene films impregnated with Pt-benzoporphyrin dye, we show that such substrates enable simple one-step fabrication of O2 sensors by standard and scalable polymer processing technologies. In addition, the resulting sensor materials show prominent response to tensile drawing via changes in phosphorescence intensity and lifetime and O2 quenching constant, Kq. The mechanosensitive response shows reversibility and hysteresis, which are related to macroscopic changes in the nanoporous structure of the polymer. Such multifunctional materials can find use as mechanically tunable O2 sensors, as well as strain/deformation sensors operating in a phosphorescence-lifetime-based detection mode.
KW - hard elastic polymers
KW - mechanically tunable oxygen sensors
KW - Mechanosensitive materials
KW - phosphorescence-based sensors
KW - strain and deformation sensors
UR - https://www.scopus.com/pages/publications/85018482674
U2 - 10.1021/acsami.7b00405
DO - 10.1021/acsami.7b00405
M3 - Article
C2 - 28367617
AN - SCOPUS:85018482674
SN - 1944-8244
VL - 9
SP - 13587
EP - 13592
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 15
ER -