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Low-Bandgap Polymers
Low-Bandgap Polymers

Low-Band gap Conjugated Polymers with Strong Absorption in the Second  Near-Infrared Region Based on Diketopyrrolopyrrole-Containing Quinoidal  Units | Macromolecules
Low-Band gap Conjugated Polymers with Strong Absorption in the Second Near-Infrared Region Based on Diketopyrrolopyrrole-Containing Quinoidal Units | Macromolecules

Low-Energy-Loss Polymer Solar Cells with 14.52% Efficiency Enabled by Wide- Band-Gap Copolymers
Low-Energy-Loss Polymer Solar Cells with 14.52% Efficiency Enabled by Wide- Band-Gap Copolymers

Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From  Diarylcyclopentadienone-Fused Naphthalimides
Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From Diarylcyclopentadienone-Fused Naphthalimides

Polymers | Free Full-Text | From Insulating PMMA Polymer to Conjugated  Double Bond Behavior: Green Chemistry as a Novel Approach to Fabricate Small  Band Gap Polymers | HTML
Polymers | Free Full-Text | From Insulating PMMA Polymer to Conjugated Double Bond Behavior: Green Chemistry as a Novel Approach to Fabricate Small Band Gap Polymers | HTML

Regioregular narrow-bandgap-conjugated polymers for plastic electronics |  Nature Communications
Regioregular narrow-bandgap-conjugated polymers for plastic electronics | Nature Communications

Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From  Diarylcyclopentadienone-Fused Naphthalimides
Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From Diarylcyclopentadienone-Fused Naphthalimides

Polymers | Free Full-Text | Synthesis of Reactive Water-Soluble Narrow-Band-Gap  Polymers for Post-Crosslinking | HTML
Polymers | Free Full-Text | Synthesis of Reactive Water-Soluble Narrow-Band-Gap Polymers for Post-Crosslinking | HTML

Very Small Bandgap π-Conjugated Polymers with Extended Thienoquinoids |  Journal of the American Chemical Society
Very Small Bandgap π-Conjugated Polymers with Extended Thienoquinoids | Journal of the American Chemical Society

Organic Semiconductors | Optoelectronics
Organic Semiconductors | Optoelectronics

Synthesis of Conjugated Polymers for Organic Solar Cell Applications
Synthesis of Conjugated Polymers for Organic Solar Cell Applications

Dirac Cones in two-dimensional conjugated polymer networks | Nature  Communications
Dirac Cones in two-dimensional conjugated polymer networks | Nature Communications

PDF) Synthesis and electro-polymerisation of a novel heteropentalene  mesomeric betaine: preparation of a novel low band-gap conjugated polymer |  Saadeldin Taher Elmasly - Academia.edu
PDF) Synthesis and electro-polymerisation of a novel heteropentalene mesomeric betaine: preparation of a novel low band-gap conjugated polymer | Saadeldin Taher Elmasly - Academia.edu

Selenophene Bearing Low Band Gap Conjugated Polymers: Tuning Optoelectronic  Properties via Fluorene and Carbazole as Donor Moieties[v1] | Preprints
Selenophene Bearing Low Band Gap Conjugated Polymers: Tuning Optoelectronic Properties via Fluorene and Carbazole as Donor Moieties[v1] | Preprints

Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 -  Advanced Materials Technologies - Wiley Online Library
Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 - Advanced Materials Technologies - Wiley Online Library

Review on the Recent Progress in Low Band Gap Conjugated Polymers for Bulk  Hetero‐junction Polymer Solar Cells - Jhuo - 2014 - Journal of the Chinese  Chemical Society - Wiley Online Library
Review on the Recent Progress in Low Band Gap Conjugated Polymers for Bulk Hetero‐junction Polymer Solar Cells - Jhuo - 2014 - Journal of the Chinese Chemical Society - Wiley Online Library

Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 -  Advanced Materials Technologies - Wiley Online Library
Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 - Advanced Materials Technologies - Wiley Online Library

Highly crystalline, low band-gap semiconducting polymers based on  phenanthrodithiophene-benzothiadiazole for solar cells and transistors -  Polymer Chemistry (RSC Publishing)
Highly crystalline, low band-gap semiconducting polymers based on phenanthrodithiophene-benzothiadiazole for solar cells and transistors - Polymer Chemistry (RSC Publishing)

π‐Conjugated Donor Polymers: Structure Formation and Morphology in  Solution, Bulk and Photovoltaic Blends - Hildner - 2017 - Advanced Energy  Materials - Wiley Online Library
π‐Conjugated Donor Polymers: Structure Formation and Morphology in Solution, Bulk and Photovoltaic Blends - Hildner - 2017 - Advanced Energy Materials - Wiley Online Library

Conductivity of Polymers
Conductivity of Polymers

Structure and Optical Bandgap Relationship of π-Conjugated Systems | PLOS  ONE
Structure and Optical Bandgap Relationship of π-Conjugated Systems | PLOS ONE

Formation of energy bands in conjugated polymers. (Figure redrawn and... |  Download Scientific Diagram
Formation of energy bands in conjugated polymers. (Figure redrawn and... | Download Scientific Diagram

Low-Bandgap Polymers
Low-Bandgap Polymers

Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From  Diarylcyclopentadienone-Fused Naphthalimides
Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From Diarylcyclopentadienone-Fused Naphthalimides

A Wide Band Gap Polymer with a Deep Highest Occupied Molecular Orbital  Level Enables 14.2% Efficiency in Polymer Solar Cells | Journal of the  American Chemical Society
A Wide Band Gap Polymer with a Deep Highest Occupied Molecular Orbital Level Enables 14.2% Efficiency in Polymer Solar Cells | Journal of the American Chemical Society

a) Effect of the conjugation length on the band gap of an organic... |  Download Scientific Diagram
a) Effect of the conjugation length on the band gap of an organic... | Download Scientific Diagram

A modular synthetic approach for band-gap engineering of armchair graphene  nanoribbons | Nature Communications
A modular synthetic approach for band-gap engineering of armchair graphene nanoribbons | Nature Communications