Literature DB >> 23113604

Third generation photovoltaics based on multiple exciton generation in quantum confined semiconductors.

Matthew C Beard1, Joseph M Luther, Octavi E Semonin, Arthur J Nozik.   

Abstract

Improving the primary photoconversion process in a photovoltaiccell by utilizing the excess energy that is otherwise lost as heat can lead to an increase in the overall power conversion efficiency (PCE). Semiconductor nanocrystals (NCs) with at least one dimension small enough to produce quantum confinement effects provide new ways of controlling energy flow not achievable in thin film or bulk semiconductors. Researchers have developed various strategies to incorporate these novel structures into suitable solar conversion systems. Some of these methods could increase the PCE past the Shockley-Queisser (SQ) limit of ∼33%, making them viable "third generation photovoltaic" (TGPV) cell architectures. Surpassing the SQ limit for single junction solar cells presents both a scientific and a technological challenge, and the use of semiconductor NCs to enhance the primary photoconversion process offers a promising potential solution. The NCs are synthesized via solution phase chemical reactions producing stable colloidal solutions, where the reaction conditions can be modified to produce a variety of shapes, compositions, and structures. The confinement of the semiconductor NC in one dimension produces quantum films, wells, or discs. Two-dimensional confinement leads to quantum wires or rods (QRs), and quantum dots (QDs) are three-dimensionally confined NCs. The process of multiple exciton generation (MEG) converts a high-energy photon into multiple electron-hole pairs. Although many studies have demonstrated that MEG is enhanced in QDs compared with bulk semiconductors, these studies have either used ultrafast spectroscopy to measure the photon-to-exciton quantum yields (QYs) or theoretical calculations. Implementing MEG in a working solar cell has been an ongoing challenge. In this Account, we discuss the status of MEG research and strategies towards implementing MEG in working solar cells. Recently we showed an external quantum efficiency for photocurrent of greater than 100% (reaching 114%) at ∼4Eg in a PbSe QD solar cell. The internal quantum efficiency reached 130%. These results compare favorably with ultrafast transient spectroscopic measurements. Thus, we have shown that one of the tenets of the SQ limit, that photons only produce one electron-hole pair at the electrodes of a solar cell, can be overcome. Further challenges include increasing the MEG efficiency and improving the QD device structure and operation.

Entities:  

Year:  2012        PMID: 23113604     DOI: 10.1021/ar3001958

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  24 in total

1.  Multiple exciton generation in quantum dots versus singlet fission in molecular chromophores for solar photon conversion.

Authors:  Matthew C Beard; Justin C Johnson; Joseph M Luther; Arthur J Nozik
Journal:  Philos Trans A Math Phys Eng Sci       Date:  2015-06-28       Impact factor: 4.226

2.  The promise and challenge of nanostructured solar cells.

Authors:  Matthew C Beard; Joseph M Luther; Arthur J Nozik
Journal:  Nat Nanotechnol       Date:  2014-12       Impact factor: 39.213

Review 3.  Energy conversion approaches and materials for high-efficiency photovoltaics.

Authors:  Martin A Green; Stephen P Bremner
Journal:  Nat Mater       Date:  2016-12-20       Impact factor: 43.841

4.  Cadmium sulphide quantum dots with tunable electronic properties by bacterial precipitation.

Authors:  K E Marusak; Y Feng; C F Eben; S T Payne; Y Cao; L You; S Zauscher
Journal:  RSC Adv       Date:  2016-08-05       Impact factor: 3.361

5.  Lead Telluride Quantum Dot Solar Cells Displaying External Quantum Efficiencies Exceeding 120%.

Authors:  Marcus L Böhm; Tom C Jellicoe; Maxim Tabachnyk; Nathaniel J L K Davis; Florencia Wisnivesky-Rocca-Rivarola; Caterina Ducati; Bruno Ehrler; Artem A Bakulin; Neil C Greenham
Journal:  Nano Lett       Date:  2015-11-16       Impact factor: 11.189

6.  Highly efficient carrier multiplication in PbS nanosheets.

Authors:  Michiel Aerts; Thomas Bielewicz; Christian Klinke; Ferdinand C Grozema; Arjan J Houtepen; Juleon M Schins; Laurens D A Siebbeles
Journal:  Nat Commun       Date:  2014-04-30       Impact factor: 14.919

7.  Spectroscopy of carrier multiplication in nanocrystals.

Authors:  Benjamin Bruhn; Rens Limpens; Nguyen Xuan Chung; Peter Schall; Tom Gregorkiewicz
Journal:  Sci Rep       Date:  2016-02-08       Impact factor: 4.379

8.  High charge-carrier mobility enables exploitation of carrier multiplication in quantum-dot films.

Authors:  C S Suchand Sandeep; Sybren ten Cate; Juleon M Schins; Tom J Savenije; Yao Liu; Matt Law; Sachin Kinge; Arjan J Houtepen; Laurens D A Siebbeles
Journal:  Nat Commun       Date:  2013       Impact factor: 14.919

9.  Carrier multiplication detected through transient photocurrent in device-grade films of lead selenide quantum dots.

Authors:  Jianbo Gao; Andrew F Fidler; Victor I Klimov
Journal:  Nat Commun       Date:  2015-09-08       Impact factor: 14.919

10.  Improved Open- Circuit Voltage in ZnO-PbSe Quantum Dot Solar Cells by Understanding and Reducing Losses Arising from the ZnO Conduction Band Tail.

Authors:  Robert L Z Hoye; Bruno Ehrler; Marcus L Böhm; David Muñoz-Rojas; Rashid M Altamimi; Ahmed Y Alyamani; Yana Vaynzof; Aditya Sadhanala; Giorgio Ercolano; Neil C Greenham; Richard H Friend; Judith L MacManus-Driscoll; Kevin P Musselman
Journal:  Adv Energy Mater       Date:  2014-02-21       Impact factor: 29.368

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.