Switching charge kinetics from type-I to Z-scheme for g-C3N4 and ZnIn2S4 by defective engineering for efficient and durable hydrogen evolution
文献情報
Mingya Wang, Shushu Huang, Xin Pang, Meiting Song, Chunfang Du, Yiguo Su
By virtue of the spatial separation of active sites, light harvesting as well as highly preserved redox capability, direct Z-scheme heterostructural photocatalysts are found as promising materials for solar energy conversion and environmental remediation. However, challenges still exist in regulating the electron flow direction between semiconductors with staggered electronic structures. In this regard, by regulating the defective crystalline features of g-C3N4, a direct Z-scheme DC-g-C3N4/ZnIn2S4 heterostructure was gained for the modulation of the electronic structure and robust hydrogen production performance. The insertion of defective groups into the carbon nitride matrix led to a drastic downshift of band edge potentials in comparison to that of pristine g-C3N4. This variation gave birth to a staggered band edge alignment between DC-g-C3N4 and ZnIn2S4, resulting in charge transfer kinetics variation from type-I to direct Z-scheme. By careful characterization, it was found that the highly crystalline DC-g-C3N4 coupled with ZnIn2S4 to show a fine interfacial contact. The optimal photocatalytic hydrogen evolution reaction (PHER) activity over DC-g-C3N4/ZnIn2S4 reached 1.65 mmol g−1 h−1 with an apparent quantum efficiency (AQE) of about 18.2% at 420 nm and an AQE of ∼2.2% at 600 nm. In combination with photocurrent measurements, photoluminescence spectra and electron paramagnetic resonance, the improved hydrogen evolution activity is regarded as the consequence of the decreased onset potential and improved spatial segregation of charge carriers via a direct Z-scheme carrier migration, where photoinduced electrons in DC-g-C3N4 can quickly combine with photoinduced holes in the valence band of ZnIn2S4, leading to the spatial separation of photoinduced electrons and holes between the two semiconductors.
関連文献
Probing the secondary structure of bovine serum albumin during heat-induced denaturation using mid-infrared fiberoptic sensors
Rui Lu, Wen-Wei Li, Abraham Katzir, Yosef Raichlin, Han-Qing Yu, Boris Mizaikoff
DOI: 10.1039/C4AN01495B
Preparation of a bifunctional ultrathin nickel phosphide nanosheet electrocatalyst for full water splitting
Nouraiz Mushtaq, Chen Qiao, Hassina Tabassum, Muhammad Naveed, Muhammad Tahir, Youqi Zhu, Muhammad Naeem, Waqar Younas, Chuanbao Cao
DOI: 10.1039/D0SE00893A
A comparative study on methods of optimal sample preparation for the analysis of oligonucleotides by matrix-assisted laser desorption/ionization mass spectrometry
Jessica A. Ragas, Tracey A. Simmons, Patrick A. Limbach
DOI: 10.1039/A909709K
Bare and polyelectrolyte-coated calcium carbonate particles for seawater uranium extraction: an eco-friendly alternative
Jérémie Courtois, Bin Wang, Isaac N. Abonee, Xiong Kun, Qiang Tian, Minhao Yan
DOI: 10.1039/D0SE00785D
Shape-controlled synthesis of single-crystalline anatase TiO2 micro/nanoarchitectures for efficient dye-sensitized solar cells
Cheng Liu, Yi Yang, Jiahong Pan, Jianxi Yao, Linhua Hu
DOI: 10.1039/C6SE00041J
Characterization of ginseng saponins using electrospray mass spectrometry and collision-induced dissociation experiments of metal-attachment ions
Suzanne Z. Ackloo, Richard W. Smith, Johan K. Terlouw, Brian E. McCarry
DOI: 10.1039/A908419C
On the role of local heating in cathode degradation during the oxygen reduction reaction in solid acid fuel cells
Maximilian Wagner, Oliver Lorenz, Felix P. Lohmann-Richters, Aron Varga, Bernd Abel
DOI: 10.1039/D0SE00842G
こちらもおすすめ
4'-ブロモビフェニル-3-メトークシーディ.ActionBarはどのように保存すればよいですか?
4'-ブロモビフェニル-3-メトークシーディ.ActionBarは、冷暗所で、直射日光を避け、密栓の容器に保存し、遠隔場所に保管してください。温度は常温(0〜2...
2-異丙基フェニルヒドラジン塩酸塩とは何ですか?
2-異丙基フェニルヒドラジン塩酸塩は、CAS番号58928-82-8を有する化合物で、構造式はC11H14N2HClです。これは塩基性化合物であり、水に溶けやす...
5-(4-クロロフェニル)-4H-1,2,4-三氮唑-3-アミンを取り扱う際の実験室安全事項は何ですか?
5-(4-クロロフェニル)-4H-1,2,4-三氮唑-3-アミンは取り扱いに注意が必要です。PPEとして防塵マスク、ゴーグル、手袋を使用し、ドラフトチャンバーを...
去甲基雷贝拉唑硫醚はどのように合成されますか?
去甲基雷贝拉唑硫醚は、ベンジミダゾール硫化物と3-メチル-4-ピリジノールの反応によって合成されます。具体的には、2-チオキシドベンジミダゾールと3-メチル-4...
2-ブロモ-5-フロロ-N-(2-フェノールメチル)ベンゼンウレアは安全ですか?
2-ブロモ-5-フロロ-N-(2-フェノールメチル)ベンゼンウレアは、毒性や刺激性の実験データに基づき、適切な取扱いと防護措置を講じることで安全に使用できます。...
対甲苯磺酸酯-四聚乙二醇-四氢吡喃醚の物理化学的性質は何ですか?
対甲苯磺酸酯-四聚乙二醇-四氢吡喃醚のCAS番号は86259-89-4です。この化合物は無色の液体で、分子量は約724.8です。高濃度では溶血性が報告されており...
2-(3-(二氟甲基)-4-氟苯基)-4,4,5,5-四甲基-1,3,2-二噁硼戊環はどのように保存すればよいですか?
2-(3-(二氟甲基)-4-氟苯基)-4,4,5,5-四甲基-1,3,2-二噁硼戊環は、室温で暗い場所に保管し、直射日光から遠ざけ、容器は密閉状態で保存してくだ...
6-アミノ-5-クロロ-2-シクロプロピルピリミジンカルボン酸の代替品はありますか?
この化合物の代替品には、ピロリミジン酸やその類似物、またピロリミジンカルボン酸の他の異性体があります。これらの代替品は、特定の化学反応や目的に応じて選択すること...
5-クロロベンゾ[1,3]二オキセイン-4-アミンに適用される法規ガイドラインは何ですか?
5-クロロベンゾ[1,3]二オキセイン-4-アミンはCAS番号379228-45-2に該当します。この化合物はGHS分類でH314(接触により急性毒性がある)と...















