研究目的
To develop high performance polymers bearing photo-crosslinkable function for all-PSCs to achieve both high efficiency and stability.
研究成果
Photo-crosslinked PBDT(T)FTAZ-B5 + UV5min-based devices afford extraordinarily excellent thermal stability, maintaining high retention rate of 91.8% of the maximum PCEavg and the intrinsic performance (PCEmax: 6.12%) even after 72 h 150 °C annealing. This indicates that developing photo-crosslinkable Br-functionalized polymers is an effective strategy to further advance in both stability and efficiency of all-PSCs.
研究不足
The study focuses on the thermal stability and efficiency of all-PSCs based on photo-crosslinkable Br-functionalized polymers, but does not address other potential stability issues such as environmental stability.
1:Experimental Design and Method Selection:
Synthesis of novel -(D-A)a-(D-D1)b-type photo-crosslinkable bromine (Br)-functionalized polymer donors PBDT(T)FTAZ-BX.
2:Sample Selection and Data Sources:
Use of benzodithiophene (BDT) derivative as first component (D), thiophene-difluoro-benzotriazole (FTAZ) derivative as second component (A), and new simple BDT-based functionality appended Br-unit as third component (D1).
3:1). List of Experimental Equipment and Materials:
3. List of Experimental Equipment and Materials: UV light (λ = 254 nm) for photo-crosslinking, chloroform (CF), o-dichlorobenzene (DCB), and chlorobenzene (CB) as solvents.
4:Experimental Procedures and Operational Workflow:
UV-mediated photo-crosslinking effects on performance and thermal stability were explored.
5:Data Analysis Methods:
Photovoltaic properties and thermal stability of the devices were evaluated.
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