6 research outputs found
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use
Sticky Architecture: Encoding Pressure Sensitive Adhesion in Polymer Networks
Pressure sensitive adhesives (PSAs) are ubiquitous materials
within
a spectrum that span from office supplies to biomedical devices. Currently,
the ability of PSAs to meet the needs of these diverse applications
relies on trial-and-error mixing of assorted chemicals and polymers,
which inherently entails property imprecision and variance over time
due to component migration and leaching. Herein, we develop a precise
additive-free PSA design platform that predictably leverages polymer
network architecture to empower comprehensive control over adhesive
performance. Utilizing the chemical universality of brush-like elastomers,
we encode work of adhesion ranging 5 orders of magnitude with a single
polymer chemistry by coordinating brush architectural parameters–side
chain length and grafting density. Lessons from this design-by-architecture
approach are essential for future implementation of AI machinery in
molecular engineering of both cured and thermoplastic PSAs incorporated
into everyday use