Enhanced charge carrier transport properties in colloidal quantum dot solar cells via organic and inorganic hybrid surface passivation

被引:31
作者
Hong, John [1 ]
Hou, Bo [1 ]
Lim, Jongchul [2 ]
Pak, Sangyeon [1 ]
Kim, Byung-Sung [1 ]
Cho, Yuljae [1 ]
Lee, Juwon [1 ]
Lee, Young-Woo [1 ]
Giraud, Paul [1 ]
Lee, Sanghyo [1 ]
Park, Jong Bae [3 ]
Morris, Stephen M. [1 ]
Snaith, Henry J. [2 ]
Sohn, Jung Inn [1 ]
Cha, SeungNam [1 ]
Kim, Jong Min [4 ]
机构
[1] Univ Oxford, Dept Engn Sci, Oxford OX1 3PJ, England
[2] Univ Oxford, Clarendon Lab, Dept Phys, Oxford OX1 3PU, England
[3] Korea Basic Sci Inst, Jeonju Ctr, Jeonju 561180, Jeollabuk Do, South Korea
[4] Univ Cambridge, Dept Engn, Cambridge CB3 0FA, England
基金
欧洲研究理事会; 新加坡国家研究基金会;
关键词
SUB-BANDGAP STATES; ELECTRICAL-PROPERTIES; HALIDE PASSIVATION; PBS NANOCRYSTALS; PERFORMANCE; FILMS; ASSEMBLIES; EFFICIENCY; PROSPECTS;
D O I
10.1039/c6ta06835a
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Colloidal quantum dots (CQDs) are extremely promising as photovoltaic materials. In particular, the tunability of their electronic band gap and cost effective synthetic procedures allow for the versatile fabrication of solar energy harvesting cells, resulting in optimal device performance. However, one of the main challenges in developing high performance quantum dot solar cells (QDSCs) is the improvement of the photo-generated charge transport and collection, which is mainly hindered by imperfect surface functionalization, such as the presence of surface electronic trap sites and the initial bulky surface ligands. Therefore, for these reasons, finding effective methods to efficiently decorate the surface of the as-prepared CQDs with new short molecular length chemical structures so as to enhance the performance of QDSCs is highly desirable. Here, we suggest employing hybrid halide ions along with the shortest heterocyclic molecule as a robust passivation structure to eliminate surface trap sites while decreasing the charge trapping dynamics and increasing the charge extraction efficiency in CQD active layers. This hybrid ligand treatment shows a better coordination with Pb atoms within the crystal, resulting in low trap sites and a near perfect removal of the pristine initial bulky ligands, thereby achieving better conductivity and film structure. Compared to halide ion-only treated cells, solar cells fabricated through this hybrid passivation method show an increase in the power conversion efficiency from 5.3% for the halide ion-treated cells to 6.8% for the hybrid-treated solar cells.
引用
收藏
页码:18769 / 18775
页数:7
相关论文
共 32 条
[1]   Toward Conductive Mesocrystalline Assemblies: PbS Nanocrystals Cross-Linked with Tetrathiafulvalene Dicarboxylate [J].
Andre, Alexander ;
Zherebetskyy, Danylo ;
Hanifi, David ;
He, Bo ;
Khoshkhoo, Mandi Samadi ;
Jankowski, Maciej ;
Chasse, Thomas ;
Wang, Lin-Wang ;
Schreiber, Frank ;
Salleo, Alberto ;
Liu, Yi ;
Scheele, Marcus .
CHEMISTRY OF MATERIALS, 2015, 27 (23) :8105-8115
[2]   High-Efficiency Colloidal Quantum Dot Photovoltaic Devices Using Chemically Modified Heterojunctions [J].
Azmi, Randi ;
Oh, Seung-Hwan ;
Jang, Sung-Yeon .
ACS ENERGY LETTERS, 2016, 1 (01) :100-106
[3]   Counterion-Mediated Ligand Exchange for PbS Colloidal Quantum Dot Super lattices [J].
Balazs, Daniel M. ;
Dirin, Dmitry N. ;
Fang, Hong-Hua ;
Protesescu, Loredana ;
ten Brink, Gert H. ;
Kooi, Bart J. ;
Koyalenko, Maksym V. ;
Loi, Maria Antonietta .
ACS NANO, 2015, 9 (12) :11951-11959
[4]   Thiols Passivate Recombination Centers in Colloidal Quantum Dots Leading to Enhanced Photovoltaic Device Efficiency [J].
Barkhouse, D. Aaron R. ;
Pattantyus-Abraham, Andras G. ;
Levina, Larissa ;
Sargent, Edward H. .
ACS NANO, 2008, 2 (11) :2356-2362
[5]   Quantum Dots and Their Multimodal Applications: A Review [J].
Bera, Debasis ;
Qian, Lei ;
Tseng, Teng-Kuan ;
Holloway, Paul H. .
MATERIALS, 2010, 3 (04) :2260-2345
[6]   The role of surface passivation for efficient and photostable PbS quantum dot solar cells [J].
Cao, Yiming ;
Stavrinadis, Alexandros ;
Lasanta, Tania ;
So, David ;
Konstantatos, Gerasimos .
NATURE ENERGY, 2016, 1
[7]   Colloidal Quantum Dot Solar Cells [J].
Carey, Graham H. ;
Abdelhady, Ahmed L. ;
Ning, Zhijun ;
Thon, Susanna M. ;
Bakr, Osman M. ;
Sargent, Edward H. .
CHEMICAL REVIEWS, 2015, 115 (23) :12732-12763
[8]  
Chuang CHM, 2014, NAT MATER, V13, P796, DOI [10.1038/nmat3984, 10.1038/NMAT3984]
[9]   Open-Circuit Voltage Deficit, Radiative Sub-Bandgap States, and Prospects in Quantum Dot Solar Cells [J].
Chuang, Chia-Hao Marcus ;
Maurano, Andrea ;
Brandt, Riley E. ;
Hwang, Gyu Weon ;
Jean, Joel ;
Buonassisi, Tonio ;
Bulovic, Vladimir ;
Bawendi, Moungi G. .
NANO LETTERS, 2015, 15 (05) :3286-3294
[10]   A layer-nanostructured assembly of PbS quantum dot/multiwalled carbon nanotube for a high-performance photoswitch [J].
Feng, Wei ;
Qin, Chengqun ;
Shen, Yongtao ;
Li, Yu ;
Luo, Wen ;
An, Haoran ;
Feng, Yiyu .
SCIENTIFIC REPORTS, 2014, 4