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1.
崔言娟  王愉雄  王浩  曹福  陈芳艳 《催化学报》2016,(11):1899-1906
二维层状半导体材料与其体相堆积结构相比表现出独特的性质,有望在纳米材料科学领域取得新的突破.基于对太阳能利用的研究,二维半导体光催化材料引起了研究者的广泛关注.诸多半导体材料已被设计合成二维纳米片结构应用于光催化领域,如 MoS2, WS2, SnS2和TiO2等.石墨相氮化碳(g-C3N4)是一种典型的非金属二维聚合物半导体.二维层状结构的组成使得 g-C3N4纳米片能够表现出优异的光电性质.然而,其合成目前仍然存在很大困难.目前已报道的单层或多层 g-C3N4的制备主要有超声辅助溶剂剥离法、热处理法、插层法和电化学合成法等.但这些方法存在合成复杂和引入结构缺陷等不足.另外,在体相组成中插入孔结构也能够提高 g-C3N4的光催化活性.目前常用的方法主要是模板法.然而,在这些生孔过程中往往引起聚合度降低,增加长程无序度,不利于光生载流子的传输.因此,如果将多孔结构引入 g-C3N4纳米片,同时提高其聚合度结构,将在很大程度上提高其光催化性能.本文利用直接氨气热聚合的方法,将硫氰酸铵进行高温热处理,一步法合成出较高聚合度的多孔 g-C3N4纳米片,在可见光照射下表现出较高的产氢活性和稳定性.采用 X射线衍射(XRD)、红外光谱(FTIR)、荧光光谱(PL)和电子顺磁共振(EPR)等方法对多孔 g-C3N4纳米片结构进行了详细表征.在助催化剂 Pt存在下,采用可见光照射(>420 nm)分解水产氢的方法评价了其光催化性能.结果表明,热处理温度对产物结构及性能具有较大影响. XRD结果表明,在450oC热处理,硫氰酸铵未完全聚合,与前期氮气热处理的结论不同.当热聚合温度上升至500oC,石墨相结构形成.至600oC时,石墨相的层间距缩小,且聚合度没有明显下降.这表明氨气气氛抑制了原料分解,提高了分解聚合温度,同时增加了产物的聚合度. FTIR结果表明,热聚合温度对产物 C–N共轭结构改变不大,但在810 cm–1处的峰位向长波数移动,表明七嗪环单元含量增加,再次证明高的热聚合温度没有造成明显的结构分解,反而促进了聚合结构的形成.扫描电镜与氮气吸脱附分析表明,随着聚合温度升高,产物粒子尺寸变小,形貌呈现层状分布,并伴随多孔状的产生,因此比表面积和孔体积显著增大,吸收带边发生蓝移. PL和 EPR结果表明,聚合温度从500增至600oC,样品光生载流子的复合速率下降,导带离域电子密度增加,从而有利于光催化性能的提高.光解水产氢性能测试表明,聚合温度升高有利于催化剂产氢速率提高;600oC所得样品的产氢速率达340μmol/h.进一步分析表明,产氢速率与比表面积基本成正相关关系,说明层状多孔结构的形成是影响产氢性能的重要因素.经过多轮循环测试,其产氢性能保持稳定而没有显著下降,表明其活性稳定性良好.  相似文献   

2.
Photocatalytic H2 production via water splitting in a noble-metal-free photocatalytic system has attracted much attention in recent years. In this study, noble-metal-free Ni3N was used as an active cocatalyst to enhance the activity of g-C3N4 for photocatalytic H2 production under visible-light irradiation (λ > 420 nm). The characterization results indicated that Ni3N nanoparticles were successfully loaded onto the g-C3N4, which accelerated the separation and transfer of photogenerated electrons and resulted in enhanced photocatalytic H2 evolution under visible-light irradiation. The hydrogen evolution rate reached ~305.4 μmol h?1 g?1, which is about three times higher than that of pristine g-C3N4, and the apparent quantum yield (AQY) was ~0.45% at λ = 420. Furthermore, the Ni3N/g-C3N4 photocatalyst showed no obvious decrease in the hydrogen production rate, even after five cycles under visible-light irradiation. Finally, a possible photocatalytic hydrogen evolution mechanism for the Ni3N/g-C3N4 system is proposed.  相似文献   

3.
A novel CaCO3/graphitic carbon nitride (g-C3N4) photocatalyst was synthesized for the first time via a facile calcination method using CaCO3 and melamine as precursors. The as-prepared samples were characterized using various techniques, such as scanning and transmission electron microscopy, X-ray diffraction, Brunauer-Emmett-Teller analysis, as well as Fourier-transform infrared, X-ray photoelectron, photoluminescence, and UV–vis diffuse reflectance spectroscopy. The results of the experiments confirm the successful coupling of CaCO3 to g-C3N4. The photocatalytic activity of the synthesized CaCO3/g-C3N4 composites was evaluated by assessing their performance in the photocatalytic degradation of crystal violet (CV) in water under visible light irradiation. The analysis shows that CaCO3/g-C3N4 exhibits higher photocatalytic activity towards CV degradation (76.0%) than pristine g-C3N4 (21.6%) and CaCO3 (23.2%). Radical trapping and electron spin resonance experiments show that hydroxyl radicals (OH) and holes (h+) are the key reactive species in the photocatalytic process. The enhanced photocatalytic activity of the composite is mainly attributed to the efficient separation rate of electron-hole pairs achieved through the incorporation of CaCO3.  相似文献   

4.
Spinel structure nickel ferrite (NiFe2O4) doped graphitic carbon nitride (g-C3N4) photocatalyst NiFe2O4/g-C3N4 was synthesized by the coprecipitation route to enhance the photocatalytic activity for the visible-light driven degradation of methyl orange. The NiFe2O4 doping content is responsible for the microstructure and photocatalytic activity of NiFe2O4/g-C3N4 samples. Compared with pure NiFe2O4 and g-C3N4, the 2-NiFe2O4/g-C3N4 composite with NiFe2O4 doping of 2.0 wt% exhibited excellent photocatalytic activity and superior stability after five runs for degrading methyl orange under visible light irradiation. The catalytic activity of 2-NiFe2O4/g-C3N4 sample produced using the coprecipitation route was higher than those of conventional 2-NiFe2O4/g-C3N4 bulks prepared by the impregnation approach. The prepared samples for the photocatalytic degradation of methyl orange followed pseudo-first-order reaction kinetics. It’s ascribed to the synergistic effect between NiFe2O4 and g-C3N4, which can inhibit the recombination of photoexcited electron-hole pairs, accelerate photoproduced charges separation, and enhance the visible light absorption.  相似文献   

5.
Exfoliation of bulk graphitic carbon nitride (g-C3N4) into two-dimensional (2D) nanosheets is one of the effective strategies to improve its photocatalytic properties so that the 2D g-C3N4 nanosheets (CN) have larger specific surface areas and more reaction sites. In addition, poly-o-phenylenediamine (PoPD) can improve the electrical conductivity and photocatalytic activity of semiconductor materials. Here, the novel efficient composite PoPD/AgCl/g-C3N4 nanosheets was first synthesized by a precipitation reaction and the photoinitiated polymerization approach. The obtained photocatalysts have larger specific surface areas and could achieve better visible-light response. However, silver chloride (AgCl) is susceptible to agglomeration and photocorrosion. The PoPD/AgCl/CN composite exhibits an extremely high photocurrent density, which is three times that of CN. Obviously enhanced photocatalytic activities of PoPD/AgCl/g-C3N4 are revealed through the photodegradation of tetracycline. The stability of PoPD/AgCl/CN is demonstrated based on four cycles of experiments that reveal that the degradation rate only decreases slightly. Furthermore, ?O2? and h+ are the main active species, which are confirmed through a trapping experiment and ESR spin-trap technique. Therefore, the prepared PoPD/AgCl/CN can be considered as a stable photocatalyst, in which PoPD is added as a charge carrier and acts a photosensitive protective layer on the surface of the AgCl particles. This provides a new technology for preparing highly stable composite photocatalysts that can effectively deal with environmental issues.  相似文献   

6.
A novel visible light-responsive homogeneous catalyst based on Bi2WO6 quantum dots (QDs-BWO)/Bi2WO6 nanosheets (N-BWO) was successfully fabricated through a simple hydrothermal method. A variety of techniques were employed to investigate the morphology, structure, and electronic properties of the samples. The photocatalytic performance of the QDs/N-BWO materials was investigated by monitoring the degradation of 4-chlorophenol and rhodamine B under visible light irradiation. The as-fabricated QDs/N-BWO materials showed higher photocatalytic activity than both QDs-BWO and N-BWO. The results reveal that the incorporation of the QDs improved the separation efficiency of electron-hole pairs, leading to enhanced photocatalytic activity. Moreover, the results of quenching experiments show that ·O2 species played a major role in the degradation process. This work provides an important reference for the fabrication of homogeneous catalysts with high performance in the degradation of different types of pollutants.  相似文献   

7.
Ag nanoparticles (NPs) were deposited on the surface of g-C3N4 (CN) by an in situ calcination method. NiS was successfully loaded onto the composites by a hydrothermal method. The results showed that the 10 wt%-NiS/1.0 wt%-Ag/CN composite exhibits excellent photocatalytic H2 generation performance under solar-light irradiation. An H2 production rate of 9.728 mmol·g?1·h?1 was achieved, which is 10.82-, 3.45-, and 2.77-times higher than those of pure g-C3N4, 10 wt%-NiS/CN, and 1.0 wt%-Ag/CN composites, respectively. This enhanced photocatalytic H2 generation can be ascribed to the co-decoration of Ag and NiS on the surface of g-C3N4, which efficiently improves light harvesting capacity, photogenerated charge carrier separation, and photocatalytic H2 production kinetics. Thus, this study demonstrates an effective strategy for constructing excellent g-C3N4-related composite photocatalysts for H2 production by using different co-catalysts.  相似文献   

8.
Polypyrrole-modified graphitic carbon nitride composites (PPy/g-C3N4) are fabricated using an in-situ polymerization method to improve the visible light photocatalytic activity of g-C3N4. The PPy/g-C3N4 is applied to the photocatalytic degradation of methylene blue (MB) under visible light irradiation. Various characterization techniques are employed to investigate the relationship between the structural properties and photoactivities of the as-prepared composites. Results show that the specific surface area of the PPy/g-C3N4 composites increases upon assembly of the amorphous PPy nanoparticles on the g-C3N4 surface. Owing to the strong conductivity, the PPy can be used as a transition channel for electrons to move onto the g-C3N4 surface, thus inhibiting the recombination of photogenerated carriers of g-C3N4 and improving the photocatalytic performance. The elevated light adsorption of PPy/g-C3N4 composites is attributed to the strong absorption coefficient of PPy. The composite containing 0.75 wt% PPy exhibits a photocatalytic efficiency that is 3 times higher than that of g-C3N4 in 2 h. Moreover, the degradation kinetics follow a pseudo-first-order model. A detailed photocatalytic mechanism is proposed with ·OH and ·O2? radicals as the main reactive species. The present work provides new insights into the mechanistic understanding of PPy in PPy/g-C3N4 composites for environmental applications.  相似文献   

9.
Nanocrystalline Ta(3)N(5) particles with a surface area of more than 33 m(2)/g were synthesized by nitridation of nanosized Ta(2)O(5) particles using NH(3) as the reactant gas. It was found that nanocrystalline Ta(2)O(5) was converted into Ta(3)N(5) completely (by X-ray diffraction, XRD) at 700 degrees C within 5.0 h, which was much lower than the temperature 900 degrees C for the complete nitridation of micrometer-sized Ta(2)O(5) powder. The oxide precursor and the resulting nitride were characterized by XRD analysis, transmission electron microscopy, UV-vis diffuse reflectance spectra, and BET surface area techniques. The nitrogen contents in the prepared Ta(3)N(5) powders were quantitatively determined with a CHN elemental analyzer. Nanocrystalline Ta(3)N(5) showed an absorption edge of around 600 nm, and Ta(3)N(5) in the size of about 26 nm exhibited a blue shift of 15 nm in the adsorption edge. The photocatalytic activity of the prepared Ta(3)N(5) under UV-vis and visible light irradiation was compared to that of nanocrystalline TiO(2-x)N(x) using the photocatalytic degradation of methylene blue (MB) as a model reaction. The Ta(3)N(5) nanoparticles showed the significantly enhanced photocatalytic activity for the degradation of MB in comparison with the larger-sized Ta(3)N(5). Moreover, the nanocrystalline Ta(3)N(5) showed much higher photocatalytic activity under visible light irradiation compared with TiO(2-x)N(x) in the same size.  相似文献   

10.
目前,在可见光照射下光催化产氢是一条解决能源短缺的理想途径.该途径实现工业化的两个关键因素是得到低成本的光催化剂和高的产氢效率.非贵金属助催化剂代替贵金属可大大降低光催化剂的成本.通过简单的方法大规模合成并组装半导体和非贵金属助催化剂以形成复合光催化剂可进一步降低成本.本文采用大规模和低成本的共沉淀法合成了磷化物/CdS光催化剂,实现了光催化产氢.当负载CoP和Mo P助催化剂后,光催化产氢活性得到大幅度提高.其中CoP/CdS和Mo P/CdS的最佳产氢量分别为140和78μmol/h,并分别为CdS的7.0倍和4.0倍,分别为Pt/CdS的2.0倍和1.1倍.这说明磷化物CoP和Mo P是具有优良催化活性的低成本非贵金属助催化剂,可以代替贵金属助催化剂应用在光催化产H_2中.在制备磷化物/CdS时,先将两种磷化物反应原料分别在水热反应釜和马弗炉中煅烧合成前驱体,再分别在管式炉氮气和氢气氛围中进行磷化得到磷化物Mo P和CoP.然后,将得到的Mo P和CoP分别溶解在Cd(NO_3)_2·4H_2O溶液中,在搅拌状态下逐滴加入Na_2S溶液形成沉淀,即可得到复合物磷化物/CdS.CoP/CdS和Mo P/CdS的HRTEM观察显示,磷化物助催化剂与CdS半导体紧密结合,证明了共沉淀法制备助催化剂/半导体复合光催化剂的有效性.磷化物与CdS的紧密结合促进了光激发电子从CdS向磷化物转移,从而大大提高了光催化产氢活性.这项工作为低成本大规模制备光催化剂和光催化产H_2实现工业化提供了一条可行性思路.  相似文献   

11.
Energy crises and environmental pollution have sparked tremendous research work to handle their impacts. Herein, we fabricated Au/g-C3N4 nanocomposites to produce H2 and degrade 2,4-dichlorophenol (2,4-DCP) under visible light and at different wavelengths. Interestingly, the optimized photocatalyst generated 114 μmol H2 and degraded 25% 2,4-DCP in 1 hr as compared with 10 μmol H2 generation and 8% 2,4-DCP degradation by pure g-C3N4. This improvement is credited to the extended light absorption and improved charge induction from gold to g-C3N4 even at 590 nm as confirmed from photoluminescence, surface photovoltage, and photoelectrochemical study of the samples. Moreover, the surface catalytic property of g-C3N4 was much improved after loading a proper amount of gold nanoparticles. We hope that this technique to photosensitize semiconductors with noble metal nanoparticles may provide a feasible way to construct surface plasmon resonance-assisted photocatalysts to cope with energy crises and environmental pollution simultaneously.  相似文献   

12.
陈峰  杨慧  罗玮  王苹  余火根 《催化学报》2017,(12):1990-1998
作为一种无金属的新型半导体材料,g-C_3N_4因具有稳定的物理化学性质及合适的能带结构而引起人们的关注.理论上g-C_3N_4完全满足水分解的电势条件.然而研究发现,g-C_3N_4材料本身的光催化性能并不好,这主要是由于半导体材料被光激发后生成的自由电子和空穴还没来得及到达材料表面参与反应,就在材料体相内发生复合,导致电子参与有效光催化制氢反应的几率大大降低.同时还发现,将少量的贵金属,如Pt,Au,Pd作助催化剂修饰在该半导体表面,其光催化性能明显提高.但由于这些贵金属储量非常稀少,价格昂贵,导致它们的使用受到一定限制.而Ag作为一种价格远低于Pt,Au,Pd的贵金属,也得到了广泛的研究.研究表明,金属Ag储存电子的能力很好,因此可以有效地将半导体上生成的光生电子快速转移到Ag上面去,从而达到电子空穴快速分离的目的.但是在光催化制氢过程中,Ag吸附H~+的能力较弱,致使电子与H~+反应的诱导力较弱,使得Ag释放电子的能力较差.因此可以通过提高Ag表面对H~+的吸附强度,以加速Ag的电子释放,通过表面修饰来提高Ag助剂的光催化活性.研究发现,Ag纳米粒子表面与含硫化合物之间存在很强的亲和力.硫氰根离子(SCN~–)具有很强的电负性,容易吸附溶液中H~+离子,并且也易吸附在Ag纳米粒子的表面.因此可以利用Ag与SCN~–的作用来增强Ag释放电子的能力.本文采用光还原法将Ag沉积在g-C_3N_4半导体材料表面,然后通过在制氢牺牲剂中加入KSCN溶液,利用SCN~-与Ag的亲和力来提高光生电子参与光催化反应的效率.结果表明,在SCN~-存在的情况下,g-C_3N_4/Ag的光催化制氢性能显著提高.当制氢溶液中SCN~–浓度为0.3 mmol L~(–1)时,材料的光催化制氢性能达最大,为3.89μmol h~(–1),比g-C_3N_4/Ag性能提高5.5倍.基于少量的SCN~–就能明显提高g-C_3N_4/Ag材料的光催化性能,我们提出了一个可能性的作用机理:金属银和SCN~-协同作用,即银纳米粒子作为光生电子的捕获和传输的一种有效的电子传递介质,而选择性吸附在银表面的SCN~-作为界面活性位点有效地吸附溶液中的质子以促进产氢反应,二者协同作用,加速了g-C_3N_4-Ag–SCN~-三物种界面之间电荷的传输、分离及界面催化反应速率,有效抑制了g-C_3N_4主体材料光生电子和空穴的复合,因而g-C_3N_4/Ag–SCN复合材料的光催化制氢性能提高.考虑到其成本低、效率高,SCN~–助催化剂有很大的潜力广泛应用于制备高性能的银修饰光催化材料.  相似文献   

13.
半导体光催化技术因其能够完全矿化和降解废水以及废气中的各种有机和无机污染物而受到越来越多研究者关注.尽管TiO2作为光催化剂显示了良好的应用前景,但其只对紫外光响应,该部分能量大约仅占太阳光谱的5%,从而限制了其实际应用.因此,开发新型可见光响应光催化剂成为光催化领域的研究焦点之一.石墨相氮化碳(g-C3N4)作为一种光催化材料,由于具有良好的热和化学稳定性以及可见光响应而备受关注.然而,单纯的g-C3N4由于光生电荷载流子易复合,光催化效果并不理想.为进一步提高g-C3N4的光催化活性,构建g-C3N4基异质结复合光催化材料被认为是增强g-C3N4光生电子-空穴分离效率的有效方法.CdMoO4作为一种光催化材料,与g-C3N4匹配的能带有利于光生电子-空穴的分离,从而提高g-C3N4的光催化活性.本文通过便利的原位沉淀-煅烧过程,制备了新颖的CdMoO4/g-C3N4异质复合光催化材料.复合材料的晶相构成、形貌、表面化学组分和光学特性等通过相应的分析测试手段进行表征.光催化活性通过可见光下催化降解罗丹明B水溶液来评价.结果显示,将CdMoO4沉积在g-C3N4表面形成复合材料可明显提高光催化活性,且当CdMoO4含量为4.8 wt%时达到最佳的光催化活性.这种显著增强的光催化活性可能是由于CdMoO4/g-C3N4复合物能够有效地传输和分离光生电荷载流子,从而抑制了光生电子-空穴的复合.电化学阻抗、瞬态光电流和稳定荧光光谱测试结果证实,通过CdMoO4与g-C3N4复合可有效增强电荷分离效率.此外,活性物捕获实验表明,在光催化过程中空穴(h+)和超氧自由基(?O2?)是主要活性物种.根据莫托-肖特基实验并结合紫外-可见漫反射吸收光谱,得到了单纯g-C3N4和CdMoO4的能带结构,提出了形成的II型异质结有助于增强光催化活性的机理.  相似文献   

14.
g-C3N4是一种新型的稳定的半导体光催化材料,它可以通过热缩聚法、固相反应法、电化学沉积法和溶剂热法等制备.g-C3N4禁带宽度约为2.7 eV,吸收边在460 nm左右,具有合适的导带位置,可用作可见光响应制氢的光催化材料,但在实际应用中g-C3N4光催化性能较低,其原因可归纳为:(1)g-C3N4在吸收光子产生电子和空穴对后,光生载流子的传输速率较慢,容易在体相或表面复合,致使g-C3N4的量子效率较低;(2)材料在合成过程中易于结块,使g-C3N4的比表面积远小于理论值,严重削弱了g-C3N4光催化材料的制氢性能.目前已有很多关于g-C3N4改性的报道,但一些方法对材料的处理过程耗时较长或者合成过程较难控制.用助剂改性是提高光催化制氢活性的半导体材料的主要策略之一.合适的助剂可改进电荷分离和加速表面催化反应,从而提高光催化剂的制氢活性.虽然稀有金属或贵金属,如铂、金和银可大大提高g-C3N4的制氢速率,但由于其昂贵和稀缺性,因而应用严重受限.因此,开发成本低、储量丰富、高性能助剂来进一步提高制氢性能具有重要意义.NiS2来源丰富、价格低廉.它可在酸性和碱性的环境保持相对较高的稳定性,且其表面电子结构表现出类金属特性.但它较难与半导体光催化剂形成强耦合和界面,通常需要水热等条件下合成.实验表明,g-C3N4表面存在着大量的含氧官能团及未缩合的氨基基团,为表面接枝提供了丰富的反应活性位点,因而可利用g-C3N4表面均匀分布的含氧官能团等和Ni2+结合,再原位与S2?反应,从而在g-C3N4上负载耦合紧密的NiS2助剂,进一步提高复合材料的光催化制氢活性.本文采用低温浸渍法制备了NiS2/g-C3N4光催化剂.NiS2助剂在温和的反应条件下与g-C3N4光催化剂复合,可以防止催化剂结构的破坏,同时使得助剂均匀地分散,并紧密结合在催化剂表面,从而大大提高光催化剂的制氢性能.该样品制备过程为:(1)通过水热处理制备含氧官能团和较大比表面积的g-C3N4;(2)添加Ni(NO3)2前驱体后,Ni2+离子由于静电作用紧密吸附在g-C3N4表面;(3)在80oC加入硫代乙酰胺(TAA),可在g-C3N4的表面紧密和均匀形成助剂NiS2.表征结果证实成功制备NiS2纳米粒子修饰的g-C3N4光催化剂.当Ni含量为3 wt%,样品表现出最大的制氢速率(116μmol h?1 g?1),明显高于纯g-C3N4.此外,对NiS2/g-C3N4(3 wt%)的样品进行光催化性能的循环测试结果表明:该样品在可见光照射下可以保持一个稳定的、有效的光催化制氢性能.根据实验结果,我们提出一个可能的光催化机理:即NiS2促进了物质表面快速转移光生电子,使g-C3N4光生电荷有效分离.基于NiS2具有成本低和效率高的优点,因而有望广泛应用于制备高性能的光催化材料.  相似文献   

15.

Melamine was added to the precursor of TiO2, then TiO2 prepared by hydrothermal, while melamine was modified. Subsequently, a series of Z-scheme TiO2/g-C3N4 heterojunction composites were successfully synthesized by simple calcination. The morphology and structure of samples were characterized by XRD, FT-IR, UV–vis DRS, SEM, TEM, PL and BET. The photocatalytic activity of these samples has been investigated by degradation of Rhodamine B (RhB), and results indicated that photocatalytic activity of the as-prepared samples was greatly influenced by the content of titanium tetrabutoxide in precursors and the hydrothermal time. The degradation rate of TiO2/g-C3N4-1 to RhB was the best, which was 5.05-fold of pure TiO2 (19.61%) and 2.25-fold of bulk g-C3N4 (44.06%), respectively. The trapping experiment results showed that ·O2? and h+ were main active species during degradation of RhB. The photocatalytic activity of the sample did not decrease significantly after 4 cycles. The unique Z-scheme heterojunction between TiO2 and g-C3N4 improved photocatalytic activity of the samples under visible light.

  相似文献   

16.
Herein, cobalt (Co)-based metal–organic zeolitic imidazole frameworks (ZIF-67) coupled with g-C3N4 nanosheets synthesized via a simple microwave irradiation method. SEM, TEM and HR-TEM results showed that ZIF-67 were uniformly dispersed on g-C3N4 surfaces and had a rhombic dodecahedron shape. The photocatalytic properties of g-C3N4/ZIF-67 nanocomposite were evaluated by photocatalytic dye degradation of crystal violet (CV), 4-chlorophenol (4-CP) and photocatalytic hydrogen (H2) production. In presence of visible light illumination, the photocatalytic dye results showed that 95% CV degradation and 53% 4-CP degradation within 80 min. The H2 production of the g-C3N4/ZIF-67 composite was 2084 μmol g−1, which is 3.84 folds greater than that of bare g-C3N4 (541 μmol g−1).  相似文献   

17.
The g-C(3)N(4)-ZnO composite photocatalysts with various weight percents of ZnO were synthsized by a simple calcination process. The photocatalysts were characterized by powder X-ray diffraction (PXRD), scanning electron microscopy (SEM), high-resolution transmission electron microscopy (HR-TEM), UV-vis diffuse reflection spectroscopy (UV-vis), X-ray photoelectron spectroscopy (XPS) and thermogravimetric analysis (TGA). The PXRD and HR-TEM results show that the composite materials consist of hexagonal wurzite phase ZnO and g-C(3)N(4). The solid-state UV-vis diffuse reflection spectra show that the absorption edge of the composite materials shifts toward the lower energy region and to longer wavelengths in comparison with pure ZnO and g-C(3)N(4). Remarkably, the photocatalytic activity of g-C(3)N(4)-ZnO composites has been demonstrated, via photodegradation of Methyl Orange (MO) and p-nitrophenol experiments. The photocatalytic activity of g-C(3)N(4)-ZnO for photodegradation of Methyl Orange and p-nitrophenol under visible light irradiation was increased by over 3 and 6 times, respectively, to be much higher than that of single-phase g-C(3)N(4), clearly demonstrating a synergistic effect between ZnO and g-C(3)N(4). The concentrations of Zn(2+) in g-C(3)N(4)-ZnO system after a photocatalytic reaction at various reaction times were found to be much lower than those for a ZnO system under the same reaction conditions, indicating that the g-C(3)N(4)-ZnO composite possesses excellent long-term stability for a photocatalytic reaction in aqueous solutions. Furthermore, a synergistic photocatalysis mechanism between ZnO and g-C(3)N(4) was proposed based on the photodegradation results. Such obviously improved performance of g-C(3)N(4)-ZnO can be ascribed mainly to the enhancement of electron-hole separations at the interface of ZnO and g-C(3)N(4).  相似文献   

18.
张彬  胡晓云  刘恩周  樊君 《催化学报》2021,42(9):1519-1529
近年来,能源短缺和环境污染严重威胁人类的可持续发展.光催化技术具有绿色环保、成本低等优势,被认为是解决上述问题的最佳途径之一,其实用化的核心是开发高效可见光催化材料.石墨相氮化碳(g-C3N4)因其物理化学性质稳定、无毒、廉价及能带适宜等特点,广泛应用于光催化领域.然而,光生载流子易复合、比表面积小等问题不利于其实际应...  相似文献   

19.
Semiconducting carbon nitride materials were successfully prepared via a thermal poly-condensation of dicyandiamide as a precursor at >500 °C. The resulting materials were investigated as metal-free catalysts for the activation of H(2)O(2) with visible light under mild conditions, using the decomposition of Rhodamine B (RhB) in aqueous solution as a model reaction. Results revealed that carbon nitride catalysts can activate H(2)O(2) to generate reactive oxy-radicals under visible light irradiation without employment of any metal additives, leading to the mineralization of the dye. Factors affecting the degradation of organic compounds are pH values and the concentration of H(2)O(2). Recycling of the catalyst indicated no obvious deactivation during the entire catalytic reaction, indicating good (photo)chemical stability of metal-free polymeric carbon nitride photocatalysts for environmental purification. This study demonstrated a promising approach for the activation of green oxidant, hydrogen peroxide, by the newly-developed polymer photocatalysts for environmental remediation and oxidation catalysis.  相似文献   

20.
杨传锋  滕伟  宋艳华  崔言娟 《催化学报》2018,39(10):1615-1624
氢气是一种可替代传统燃料的理想清洁能源,利用光催化技术分解水制氢是制取氢气的有效途径之一.无机半导体光催化材料具有较高的活性和稳定性,且原料丰富,易加工改性.目前针对光催化技术的应用,大量的研究工作都集中在开发可见光响应光催化剂,以提高对可见光的利用率.同时,非金属聚合物半导体因其特殊的光电性质,在光催化应用研究中越来越受到关注,如庚嗪基微孔聚合物(HMP)和共价三嗪基骨架(CTF).石墨相碳化氮(g-C3N4)是一种典型非金属二维聚合物半导体,被认为是一种非常有价值的光催化材料.然而,其较低的光生电子的传输效率限制了其实际应用,因此诸多研究对g-C3N4的物理化学结构进行优化,如半导体耦合、共聚合、纳米结构设计和掺杂.非金属掺杂是一种有效的方法,由于原子电负性差异引起的电荷分离可有效改善载流子传输效率,且保持半导体的非金属性质.通过O,B,P和S等掺杂可以扩大可见光响应范围,并调节能带位置以改善光催化活性.除了常见的单一非金属掺杂,金属和非金属元素或多非金属元素共掺杂的办法同样可提高g-C3N4的光催化性能.本工作通过两步法对双氰胺、尿素和碘化1-乙基-3-甲基咪唑的混合物直接热聚合,合成C-I共掺杂的多孔g-C3N4,其在可见光照射下表现出较高的产氢活性和稳定性.采用X射线衍射(XRD)、X射线光电子能谱(XPS)、荧光光谱(PL)和电化学实验等方法对多孔掺杂g-C3N4结构进行详细表征和分析.在助催化剂Pt和电子牺牲剂(三乙醇胺)存在的条件下,采用可见光(>400 nm)照射分解水产氢的方法评价其光催化活性.结果表明,后热处理和碘离子液掺杂对g-C3N4材料的结构和性能具有较大影响.C-I共掺杂和后热处理使催化剂产物颗粒尺寸减小,形成多孔片层状紧密堆积,比表面积和孔隙率显著增加,吸收带边发生蓝移.后热处理使样品层间距减小,聚合度增加,有利于电荷传输,C-I共掺杂后出现更多的缺陷,但没有改变其层状堆积的特性.XPS结果表明,样品中碘元素以I-和I5+的形式存在,改性后催化剂C/N比明显增加,sp2芳环N含量增加,表面氨基含量降低,表明后热处理和C-I共掺杂没有改变多孔g-C3N4的基本骨架,共轭结构更加完善.PL和光电流结果表明,改性后样品的PL强度均显著降低,并且随着掺杂量的增加而逐渐降低,表明共掺杂可抑制光生电荷的复合.电化学测试结果表明,后热处理和C-I共掺杂的样品界面电荷转移电阻降低,导电率和电荷迁移率增加,从而有助于提高光催化性能.光解水产氢性能测试表明,后热处理和C-I共掺杂有利于催化剂产氢速率的提高,改性后CNIN0.2的产氢速率达168.2μmol/h,是纯氮化碳的9.8倍.经过多次循环测试,其产氢性能保持稳定而没有显著下降,表明其产氢稳定性较好.  相似文献   

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