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			<titleStmt><title level='a'>Plasmonic metal–semiconductor heterostructures for hot-electron-driven photochemistry</title></titleStmt>
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				<date>01/01/2020</date>
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					<idno type="par_id">10199106</idno>
					<idno type="doi">10.1557/mrs.2019.292</idno>
					<title level='j'>MRS Bulletin</title>
<idno>0883-7694</idno>
<biblScope unit="volume">45</biblScope>
<biblScope unit="issue">1</biblScope>					

					<author>Jiawei Huang</author><author>Wenxiao Guo</author><author>Yue Hu</author><author>Wei David Wei</author>
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			<abstract><ab><![CDATA[Plasmonic nanostructures possess broadly tunable optical properties with catalytically active surfaces. They offer new opportunities for achieving efficient solar-to-chemical energy conversion. Plasmonic metal–semiconductor heterostructures have attracted heightened interest due to their capability of generating energetic hot electrons that can be collected to facilitate chemical reactions. In this article, we present a detailed survey of recent examples of plasmonic metal–semiconductor heterostructures for hot-electron-driven photochemistry, including plasmonic metal–oxide, plasmonic metal–two-dimensional materials, and plasmonic metal–metal–organic frameworks. We conclude with a discussion on the remaining challenges in the field and an outlook regarding future opportunities for designing high-performance plasmonic metal–semiconductor heterostructures for photochemistry.]]></ab></abstract>
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<div xmlns="http://www.tei-c.org/ns/1.0"><head>Introduction</head><p>The conversion of renewable solar energy to chemical energy represents a promising strategy to reduce current reliance on fossil fuels. The effi cient utilization of solar energy in chemical transformations requires photocatalysts to strongly absorb light in the visible region (which constitutes 42% of solar radiation). <ref type="bibr">1</ref> Plasmonic metal nanoparticles (NPs) (e.g., Au, Ag, and Cu) possess broad absorption across the whole visible region, a quality that attracts tremendous scientifi c interest in photochemistry. <ref type="bibr">2 -6</ref> Such capability originates from the unique optical property called surface plasmon resonance (SPR), <ref type="bibr">7</ref> which can be understood as a coherent oscillation of conduction electrons induced by incident light when the frequency of the light matches the intrinsic resonant frequency of the plasmonic metal NPs. <ref type="bibr">8 , 9</ref> The SPR excitation consequently generates an intense localized electromagnetic (EM) fi eld on plasmonic metal NPs, which in turn amplifi es the absorption of light at the same frequency. <ref type="bibr">8 , 9</ref> Upon SPR excitation, the oscillation of conduction electrons quickly decays to generate hot electrons that play essential roles in prompting photochemical reactions. <ref type="bibr">2 , 3</ref> However, it is challenging for these hot electrons to directly drive chemical reactions on the surface of plasmonic metal NPs as there is a signifi cant mismatch between the lifetimes of hot electrons (femtoseconds to nanoseconds) and the time scale of chemical reactions (microseconds to seconds). <ref type="bibr">2 , 3</ref> In addition, the chemical inertness of plasmonic noble metals prevents them from facilitating a wider range of reactions. <ref type="bibr">10</ref> The development of plasmonic metal-semiconductor heterostructures offers a strategy for resolving these two limitations. In these heterostructures, Schottky barriers are formed at the plasmonic metalsemiconductor interface, which prolong the lifetime of hot electrons into the time scale of chemical reactions once they are transferred into semiconductors. <ref type="bibr">11 , 12</ref> Meanwhile, surface defects on semiconductors, such as oxygen vacancies, provide additional active sites to promote chemical reactions by simultaneously functioning as trapping sites for hot electrons and adsorption sites of reactant molecules. <ref type="bibr">13 , 14</ref> This article focuses on recent progress in using plasmonic metal-semiconductor heterostructures for hot-electron-driven photochemistry. We begin by summarizing the application of plasmonic heterostructures using oxides as substrates in photochemistry, including the most commonly used modifi cation strategies for improving the performance of these heterostructures. Subsequent sections describe other types of semiconductors, such as two-dimensional (2D) materials and metal-organic frameworks (MOFs), as supports for plasmonic metal NPs. The article concludes with an outlook on potential directions in designing high-performing plasmonic metal-semiconductor heterostructures for hot-carrier-driven photochemistry.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Plasmonic metal-semiconductor heterostructures for hot-electron-driven photochemistry</head><p>Jiawei Huang , Wenxiao Guo , Yue Hu , and Wei David Wei Plasmonic nanostructures possess broadly tunable optical properties with catalytically active surfaces. They offer new opportunities for achieving effi cient solar-to-chemical energy conversion. Plasmonic metal-semiconductor heterostructures have attracted heightened interest due to their capability of generating energetic hot electrons that can be collected to facilitate chemical reactions. In this article, we present a detailed survey of recent examples of plasmonic metal-semiconductor heterostructures for hot-electron-driven photochemistry, including plasmonic metal-oxide, plasmonic metal-two-dimensional materials, and plasmonic metal-metal-organic frameworks. We conclude with a discussion on the remaining challenges in the fi eld and an outlook regarding future opportunities for designing high-performance plasmonic metal-semiconductor heterostructures for photochemistry.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Hot-electron-driven photochemistry on plasmonic metal-oxide heterostructures</head><p>Plasmonic metal-oxide heterostructures have been extensively utilized for hot-electron-driven photochemistry due to their interfacial Schottky barrier that enables carrier separation as well as additional active sites provided by oxides for photochemical reactions. The addition of Au NPs onto TiO 2 , ZnO, and CeO 2 has been employed to successfully drive hydrogen production, <ref type="bibr">11,</ref><ref type="bibr">15</ref> CO 2 reduction, <ref type="bibr">16,</ref><ref type="bibr">17</ref> and organic transformations. <ref type="bibr">[18]</ref><ref type="bibr">[19]</ref><ref type="bibr">[20]</ref> Recently, numerous modifications have been applied to plasmonic metal-oxide heterostructures to further improve their performance in hot-electron-driven photochemistry.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Modifications on plasmonic metal NPs</head><p>Altering the size of plasmonic metal NPs has enabled catalytic enhancement in hot-electron photochemistry. Wei and co-workers <ref type="bibr">12</ref> found that Au/TiO 2 heterostructures with large Au NPs 67 nm in diameter outperformed those with small 4.4-nm Au NPs in H 2 production. The authors attributed this sizedependent activity difference to a larger optical absorption cross section of 67-nm Au NPs compared with that of the 4.4 nm ones, resulting in the generation of more hot electrons to transfer into the conduction band (CB) of TiO 2 for H 2 production. Similarly, Pradhan and co-workers <ref type="bibr">21</ref> demonstrated that increasing the size of Au NPs on SnS improved the photocatalytic activity of methylene blue reduction.</p><p>Distinct morphologies of plasmonic metal NPs have also been developed for photochemical reactions. Au nanorods (NRs) with a significantly broadened absorption in the visible and near-infrared (NIR) region are able to drive photochemistry using low-energy photons. <ref type="bibr">[22]</ref><ref type="bibr">[23]</ref><ref type="bibr">[24]</ref><ref type="bibr">[25]</ref> For instance, Ye and co-workers <ref type="bibr">22</ref> loaded Au NRs onto TiO 2 and achieved the oxidation of 2-propanol using visible-NIR light. Majima and co-workers <ref type="bibr">23</ref> utilized Au NRs as photosensitizers and achieved H 2 production on Au NR/ La 2 Ti 2 O 7 heterostructures under visible-NIR irradiation. Au nanocubes and nanocages with flat surfaces ensure face-to-face interfacial contact with oxides, and this well-defined interfacial contact benefits hot-electron transfer from Au into oxides. <ref type="bibr">26</ref> Xiong and co-workers <ref type="bibr">26</ref> integrated Au nanocubes and nanocages onto TiO 2 nanosheets and detected higher activity of H 2 production compared to that on Au NR/TiO 2 nanosheet heterostructures, in which the smaller contact area between the curved Au NR surface and TiO 2 nanosheets limited the efficiency of interfacial electron transfer. Moreover, Au nanostars were found to possess an intense EM field at their spikes. <ref type="bibr">27</ref> Upon loading onto TiO 2 , this intense EM field promoted interfacial hot-electron transfer from the Au nanostars into TiO 2 , resulting in a higher activity of rhodamine B degradation than that on TiO 2 -supported Au nanospheres or NRs.</p><p>Recently, great efforts have been made in utilizing earthabundant and inexpensive metal NPs to substitute noble plasmonic metal NPs. Halas and co-workers <ref type="bibr">28</ref> observed the plasmonic properties of Al and successfully achieved a hotelectron-driven reverse water-gas shift reaction using plasmonic Al/Cu 2 O heterostructures. Later, Wei and co-workers <ref type="bibr">29</ref> discovered that Ni also exhibited plasmonic absorption in the visible range and the plasmon excitation of Ni induced the transfer of hot electrons into TiO 2 for driving methylene blue degradation (Figure <ref type="figure">1a</ref>). Additionally, Pd and Cu have also been reported as promising plasmonic nanomaterials for chemical reactions by constructing heterostructures with oxides. <ref type="bibr">30,</ref><ref type="bibr">31</ref> </p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Modifications on oxides</head><p>Site-selective overgrowth of oxides as a means to manipulate the spatial arrangement of oxides with respect to plasmonic metal NPs has attracted substantial research interest. One advantage of this site-selective overgrowth is allowing both hot electrons and hot holes to be freely accessed by reactant molecules. <ref type="bibr">24,</ref><ref type="bibr">25</ref> A study by Stucky and co-workers <ref type="bibr">24</ref> selectively fabricated TiO 2 at the two ends of Au NRs, in which hot holes on the lateral surface of Au NRs were consumed by methanol and long-lived hot electrons accumulated in TiO 2 enabling the H 2 production reaction (Figure <ref type="figure">1b</ref>). CeO 2 was also grown onto the two ends of Au NRs for N 2 fixation. <ref type="bibr">25</ref> A 6.2-fold higher yield of ammonia formation was detected as compared to Au NR/CeO 2 coreshell nanostructures, in which hot holes were blocked by the CeO 2 shell and led to recombination with hot electrons. Another advantage of controlling oxides at specific sites of plasmonic metal NPs is to facilitate hot-electron transfer at the plasmonic metal-oxide interface. <ref type="bibr">32</ref> For example, the attachment of Cu 2 O at the high-curvature vertices of hexoctahedral Au NPs took advantage of an intense EM field at the vertices to promote hot-electron transfer into Cu 2 O for improving H 2 production. <ref type="bibr">32</ref> Introducing active sites onto oxides has been extensively investigated as a strategy to further increase the activity of photochemical reactions. Yu and co-workers <ref type="bibr">13</ref> created oxygen vacancies on TiO 2 nanosheets to both trap hot electrons from Au NPs and strongly adsorb N 2 molecules (Figure <ref type="figure">1c</ref>), resulting in the conversion of N 2 molecules into ammonia with the apparent quantum efficiency of 0.82% under 550-nm irradiation. Another method of creating active sites is to integrate secondary materials. Depositing Pt NPs onto Au/TiO 2 heterostructures has been widely used for promoting the H 2 production reaction. <ref type="bibr">[33]</ref><ref type="bibr">[34]</ref><ref type="bibr">[35]</ref> Other metal NPs, such as Ag and Pd, have also been employed as active sites on Au/TiO 2 heterostructures. <ref type="bibr">19,</ref><ref type="bibr">26,</ref><ref type="bibr">33</ref> Gong and co-workers <ref type="bibr">14</ref> deposited a thin amorphous TiO 2 layer on Au/TiO 2 heterostructures and discovered that this amorphous TiO 2 layer provided oxygen vacancies to facilitate hot-electron-driven N 2 fixation.</p><p>The development of oxides with different intrinsic electronic properties allows for the anisotropic flow of hot electrons to facilitate carrier separation. Majima and co-workers <ref type="bibr">34</ref> deposited Au NPs on the basal surface of anatase TiO 2 mesocrystal (MesoTiO 2 ) and found that hot electrons originally transferred from Au onto the basal surface further migrated to the lateral surface due to different electron affinities between these two surfaces (Figure <ref type="figure">1d</ref>). Efficient electron-hole separation on Au/MesoTiO 2 heterostructures resulted in more than an order of magnitude higher activity of organic molecule degradation than on conventional Au/TiO 2 heterostructures. Later, they deposited Au NRs onto La 2 Ti 2 O 7 with (010) and (012) facets. <ref type="bibr">23</ref> Since the (010) facet had a more negative CB minimum potential (-0.72 eV versus NHE) than that of the (012) facet (-0.52 eV versus NHE), hot electrons transferred to the (010) facet would further diffuse to the (012) facet, suppressing the electron-hole recombination and leading to enhancement in H 2 production.</p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Hot-electron-driven photochemistry on plasmonic metal-2D semiconductor heterostructures</head><p>In recent years, combining plasmonic metal NPs with thinlayer 2D semiconductors has attracted increasing interest in hot-electron photochemistry. <ref type="bibr">[36]</ref><ref type="bibr">[37]</ref><ref type="bibr">[38]</ref><ref type="bibr">[39]</ref><ref type="bibr">[40]</ref><ref type="bibr">[41]</ref> The electronic structure of 2D semiconductors is usually tunable by controlling their thickness or phase, <ref type="bibr">42,</ref><ref type="bibr">43</ref> which makes it possible to design suitable Schottky barriers between 2D semiconductors and plasmonic metal NPs for the efficient utilization of hot electrons. Meanwhile, their large surface area provides more active sites for targeting reactions. <ref type="bibr">42,</ref><ref type="bibr">43</ref> Both properties predict the great potential of plasmonic metal-2D semiconductor heterostructures as photocatalysts for chemical reactions.</p><p>A 2D molybdenum disulfide (MoS 2 ) nanosheet, which is known for its high activity for the H 2 evolution reaction, <ref type="bibr">44,</ref><ref type="bibr">45</ref> is one of the most promising candidates for constructing plasmonic metal-2D semiconductor photocatalysts. For instance, Au NRs with a SPR peak at around 810 nm were deposited on chemically exfoliated MoS 2 nanosheets. <ref type="bibr">37</ref> Upon SPR excitation of the Au NRs, the transfer of hot electrons from Au NRs into MoS 2 elevated the Fermi level of MoS 2 to the energy level of the H + /H 2 redox pair, resulting in enhanced activity of MoS 2 for the electrochemical H 2 evolution reaction (Figure <ref type="figure">2a</ref>). Similar improvement in the activity of the H 2 evolution reaction has also been reported on MoS 2 nanosheets decorated with Au nanotriangles. <ref type="bibr">36</ref> Recently, a study observed fourfold enhancement of the plasmon-driven H 2 evolution reaction on Au/MoS 2 heterostructures by introducing a Pd layer between the Au and MoS 2 . <ref type="bibr">38</ref> In these Au/Pd/MoS 2 heterostructures, the lattice mismatch between Pd and MoS 2 induced a phase variation of MoS 2 from 2H (the semiconducting phase of MoS 2 ) to 1T (the metallic phase of MoS 2 ), known to have lower electronic resistance and provide more active sites for the H 2 evolution reaction. <ref type="bibr">46</ref> As a result, the construction of such a Au/Pd/MoS 2 heterostructure contributed to a more efficient hot-electron transfer from Au to MoS 2 , eventually leading to higher activity of the H 2 evolution reaction (Figure <ref type="figure">2b</ref>).</p><p>Graphene-like structures such as reduced graphene oxide (rGO) and graphitic carbon nitride (g-C 3 N 4 ) exhibit high electronic conductivity due to their large conjugated &#960; system, which is beneficial for facilitating the separation of carriers in photochemistry. <ref type="bibr">47,</ref><ref type="bibr">48</ref> Majima and co-workers <ref type="bibr">39</ref> fabricated rGO nanosheets decorated with Au nanotriangles and Pt nanoframes as photocatalysts for the H 2 evolution reaction, in which hot electrons generated in Au efficiently transferred to rGO and further transported to catalytically active Pt nanoframes. Similarly, g-C 3 N 4 substrates with both Au and Pt nanostructures co-deposited were also reported as photocatalysts for chemical reactions, including the H 2 evolution reaction and tetracycline hydrochloride degradation. <ref type="bibr">40,</ref><ref type="bibr">41</ref> </p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Hot-electron-driven photochemistry on plasmonic metal/MOF heterostructures</head><p>Due to their high surface-to-volume ratio, tunable porosities, and adjustable internal surface properties, MOFs are known for the outstanding capability for capturing reactant molecules. <ref type="bibr">49</ref> Meanwhile, multiple options of metal ions (or clusters) and organic ligands enable the fabrication of different types of MOFs with distinct catalytic properties. <ref type="bibr">50,</ref><ref type="bibr">51</ref> These advantages make plasmonic metal-MOF heterostructures catalytically active for photochemical reactions, such as the H 2 production reaction <ref type="bibr">52,</ref><ref type="bibr">53</ref> and the reverse water-gas shift reaction. <ref type="bibr">54</ref> Jiang and co-workers <ref type="bibr">52</ref> assembled Au NRs onto Pt-decorated MIL-125 (a TiO 2 /1,4-benzenedicarboxylate (bdc) MOF) as photocatalysts for the H 2 production reaction. The transfer of hot electrons from Au to Ti centers of MIL-125 and subsequently Pt sites efficiently suppressed the recombination of carriers, facilitating the production of H 2 molecules on Pt sites (Figure <ref type="figure">2c</ref>). Similarly, Au NR-incorporated CoFe-MOF nanosheets were developed, in which hot electrons were transferred from Au NRs to Co centers to boost the activity of the H 2 evolution reaction. <ref type="bibr">53</ref> Recently, Halas and co-workers <ref type="bibr">54</ref> reported the use of a novel plasmonic metal, Al nanocrystal (NC), as the core to grow Al NC@MIL-53(Al) core-shell structures for the plasmon-driven hydrogen-deuterium (H-D) exchange. These Al NC@MIL-53(Al) core-shell structures were also catalytically active for the plasmondriven reverse water-gas shift reaction, which showed a higher selectivity toward CO molecules rather than the side product (CH 4 ) when compared with the thermally driven pathway. <ref type="bibr">54</ref> </p></div>
<div xmlns="http://www.tei-c.org/ns/1.0"><head>Conclusion</head><p>A wide range of plasmonic metal-semiconductor heterostructures have been developed to drive hot-electron photochemistry. Further improvement in the efficiency of chemical reactions requires the use of semiconductors that enable the more efficient accumulation of hot electrons. Metal halide perovskite has been proposed as a promising candidate. Xiao and co-workers <ref type="bibr">55</ref> observed that the quantum efficiency of interfacial hot-electron transfer in Ag/CsPbBr 3- heterostructures reached 50 &#177; 18%, higher than the 40% in Au/TiO 2 heterostructures. <ref type="bibr">56</ref> Meanwhile, the long diffusion lengths of carriers in metal halide perovskites would benefit electron-hole separation, <ref type="bibr">57</ref> allowing more hot electrons to be available for participating in chemical reactions. However, the fast decomposition of metal-halide perovskites upon exposure to moisture, oxygen molecules, and light limits their applications in photochemistry. <ref type="bibr">58</ref> Recently, studies have been reported to modify metal-halide perovskites to improve their stability. For instance, introducing a larger organic cation into inorganic metal halide perovskites induces morphology transformation from 3D into 2D structures. Similarly, using less acidic cations enabled the stability enhancement of metal halide perovskites. <ref type="bibr">58</ref> This progress supports the potential of using plasmonic metalmetal halide perovskite heterostructures for photochemical reactions.</p><p>In addition to hot electrons, there is increased research interest in the utilization of hot holes for oxidation reactions. For example, Li and co-workers 59 used hot holes accumulated at the Au-TiO 2 interface for water oxidation reaction; however, the insufficient amount of hot holes at active sites limited the overall yield of O 2 molecules. Therefore, the strategies of efficiently accumulating hot holes on plasmonic metal-semiconductor heterostructures need to be explored. Atwater and co-workers <ref type="bibr">60</ref> utilized the interfacial Schottky barrier between Au NPs and p-GaN to prevent the relaxation of hot holes back to Au NPs once they were transferred to p-GaN. Meanwhile, introducing a hole-storing material onto plasmonic metal-semiconductor heterostructures has also been developed for the accumulation of hot holes. <ref type="bibr">35,</ref><ref type="bibr">61</ref> However, effects of hole-storing materials on the activity of hot-hole-driven oxidation reactions were found to be sensitive to their spatial distributions on plasmonic metal-semiconductor heterostructures. For instance, Moskovits and co-workers <ref type="bibr">35</ref> attached cobalt-based oxygen evolution catalysts (Co-OEC) on the Au surface of Au nanorod/TiO 2 heterostructures, in which Co-OEC could trap hot holes and promote the water oxidation reaction. In contrast, Li and co-workers <ref type="bibr">59</ref> observed that the deposition of MnO x (a commonly used electrocatalyst of water oxidation) near the Au-TiO 2 interface supressed the activity of water oxidation. Therefore, insights into the importance of spatial distribution of hole-storing materials in determining plasmonic photochemistry would greatly assist in the optimization of photochemical reactions on plasmonic metal-semiconductor heterostructures. memberships enable materials scientists to connect with colleagues memberships enable materials scientists to connect with colleagues memberships enable materials scientists to connect with colleagues from around the world, and contribute to, and benefit from, the from around the world, and contribute to, and benefit from, the from around the world, and contribute to, and benefit from, the Society's programs. Society's programs. Society's programs. </p></div><note xmlns="http://www.tei-c.org/ns/1.0" place="foot" xml:id="foot_0"><p>. https://doi.org/10.1557/mrs.2019.292 Downloaded from https://www.cambridge.org/core. University of Florida, on 02 Feb 2020 at 00:43:18, subject to the Cambridge Core terms of use, available at https://www.cambridge.org/core/terms</p></note>
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