{"id":6710,"date":"2019-09-14T00:46:00","date_gmt":"2019-09-13T22:46:00","guid":{"rendered":"https:\/\/www.sonnenseite.com\/science\/semiconducting-material-more-affected-by-defects-than-previously-thought.html"},"modified":"2019-09-14T00:46:00","modified_gmt":"2019-09-13T22:46:00","slug":"semiconducting-material-more-affected-by-defects-than-previously-thought","status":"publish","type":"post","link":"https:\/\/www.sonnenseite.com\/en\/science\/semiconducting-material-more-affected-by-defects-than-previously-thought\/","title":{"rendered":"Semiconducting Material More Affected By Defects Than Previously Thought"},"content":{"rendered":"<p>Research opens up new possibilities for improving performance of halide perovskite<\/p>\n<p> <!--more--> <\/p>\n<p>A promising semiconductor material could be improved if flaws  previously thought irrelevant to performance are reduced, according to  research published today in <a href=\"https:\/\/www.nature.com\/articles\/s41467-019-12056-1\">Nature Communications<\/a>. A group of researchers at <a href=\"https:\/\/www.rpi.edu\/\">Rensselaer Polytechnic Institute<\/a>  and other universities has shown that a specific defect impacts the  ability of halide perovskite to hold energy derived from light in the  form of electrons. <\/p>\n<p>&ldquo;Defects could be good or bad in semiconductors,&rdquo; said <a href=\"https:\/\/faculty.rpi.edu\/jian-shi\">Jian Shi<\/a>,  associate professor of materials science engineering. &ldquo;For some reason,  people did not pay attention to dislocations in halide perovskite, but  we have shown that this defect is a problem in halide perovskite.&rdquo;<\/p>\n<p>Research on halide perovskite has rapidly improved the efficiency of  the material from about a 3% conversion of light to electrical energy to  25% &mdash; equivalent to state-of-the-art silicon solar cells &mdash; over the  course of a decade. Researchers wrestled with silicon for decades to  reach that material&rsquo;s current level of efficiency. <\/p>\n<p>Halide perovskite also has promising carrier dynamics, which are  roughly defined as the length of time that light energy absorbed by the  material is retained in the form of an excited electron. To make a good  prospect for solar energy conversion, electrons in the material must  retain their energy long enough to be harvested by an electrode attached  to the material, thus completing the conversion of light to electrical  energy.&nbsp; <\/p>\n<p>The material had long been considered &ldquo;defect tolerant,&rdquo; meaning  flaws like missing atoms, shoddy bonds across grains of the crystal, and  a mismatch known as crystallographic dislocation were not believed to  have much impact on efficiency. More recent research has questioned that  assumption and found that some defects do affect aspects of the  crystal&rsquo;s performance.<\/p>\n<p>Shi&rsquo;s team tested whether the defect of crystallographic dislocation  impacts carrier dynamics by growing the crystal on two different  substrates. One substrate had a strong interaction with the halide  perovskite as it was being deposited, producing a higher density of  dislocations. The other had a weaker interaction and produced a lower  density of dislocations. <\/p>\n<p>The results show that dislocations negatively impact the carrier  dynamics of halide perovskite. Reducing dislocation densities by more  than one order of magnitude is found to lead to an increase of electron  lifetime by four times. <\/p>\n<p>&ldquo;A conclusion is that halide perovskite has a similar dislocation  effect as conventional semiconductors,&rdquo; Shi said. &nbsp;&ldquo;We need to be  careful of dislocations in halide perovskite, which is a factor people  have been ignoring as they work on this material.&rdquo; <\/p>\n<p>Shi&rsquo;s last significant work on halide perovskite revealed the <a href=\"https:\/\/advances.sciencemag.org\/content\/4\/5\/eaar3679.short\">role of pressure on this semiconductor&rsquo;s optical properties<\/a> published in <em>Science Advances<\/em> in 2018. <\/p>\n<p>At Rensselaer, Shi was joined by researchers in both the Department  of Materials Science and Engineering and Department of Physics, Applied  Physics and Astronomy. Researchers from the Kunming University of  Science and Technology, Tsinghua University, University of Science and  Technology Beijing, Forschungszentrum Julich, and Brown University also  contributed to the research.<\/p>\n<p>The research was partially supported by the National Science Foundation and the Air Force Office of Scientific Research. &ldquo;<a href=\"https:\/\/www.nature.com\/articles\/s41467-019-12056-1\">Carrier lifetime enhancement in halide perovskite via remote epitaxy<\/a>&rdquo; was published September 12 in <em>Nature Communications<\/em>.<\/p>\n<h5 class=\"green\">Source<\/h5>\n<p><a href=\"https:\/\/news.rpi.edu\/content\/2019\/09\/12\/semiconducting-material-more-affected-defects-previously-thought\" target=\"_blank\" rel=\"noopener noreferrer\">RPI NEWS 2019 | By Mary L. 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