InvestorsHub Logo
Followers 28
Posts 7358
Boards Moderated 1
Alias Born 09/13/2010

Re: None

Wednesday, 11/29/2017 10:52:42 PM

Wednesday, November 29, 2017 10:52:42 PM

Post# of 10460
Electron-Hole Separation in Ferroelectric Oxides for Efficient Photovoltaic Responses

Donghoon Kim, Hyeon Han, June Ho Lee, Jeffrey C. Grossman, Donghun Kim, Hyun Myung Jang
(Submitted on 29 Nov 2017)

Despite their potential to exceed the theoretical Shockley-Queisser limit, ferroelectric photovoltaics (FPVs) have performed inefficiently due to their extremely low photocurrents. Incorporating Bi2FeCrO6 (BFCO) as the light absorber in FPVs has recently led to impressively high and record photocurrents [Nechache et al. Nature Photon. 2015, 9, 61], reviving the FPV field. However, our understanding of this remarkable phenomenon is far from satisfactory. Here, we use first-principles calculations to determine that such excellent performance mainly lies in the efficient separation of electron-hole (e-h) pairs. We show that photoexcited electrons and holes in BFCO are spatially separated on the Fe and Cr sites, respectively. This separation is much more pronounced in disordered BFCO phases, which show exceptional PV responses. We further set out to design a strategy for next-generation FPVs, not limited to BFCO, by exploring 44 additional Bi-based double-perovskite oxides. We suggest 9 novel active-layer materials that can offer strong e-h separations and a desired band gap energy for application in FPVs. Our work indicates that charge separation is the most important issue to be addressed for FPVs to compete with conventional devices


https://arxiv.org/abs/1711.10979

Join the InvestorsHub Community

Register for free to join our community of investors and share your ideas. You will also get access to streaming quotes, interactive charts, trades, portfolio, live options flow and more tools.