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1.
有中学化学参考资料题:0.10 mol/L的NH4Cl和(NH4)2SO4溶液哪个pH值高?这似乎是个中学生可做的简单题目,仔细考虑不是如此.如果简单地认为盐酸和硫酸都是强酸,而硫酸是二元酸,硫酸铵溶液中铵盐浓度为0.20 mol/L,那么NH4Cl溶液pH高,那是不妥的.硫酸是二元酸,第一个氢离子能完全电离,第二个氢离子部分电离,如此考虑情况怎么样呢?是不是答案发生变化?这要通过计算来说明.  相似文献   

2.
The conversion efficiencies reported for Tin(Sn)halide-based perovskite solar cells(PSCs)fall a large gap behind those of lead halide-based PSCs,mainly because of poor film quality of the former.Here we report an efficient strategy based on a simple secondary crystallization growth(SCG)technique to improve film quality for tin halide-based PSCs by applying a series of functional amine chlorides on the perovskite surface.They were discovered to enhance the film crystallinity and suppress the oxidation of Sn2+remarkably,hence reduce trap state density and non-irradiative recombination in the absorber films.Furthermore,the SCG film holds the band levels matching better with carrier transport layers and herein favoring charge extraction at the device interfaces.Consequently,a champion device efficiency of 8.07% was achieved alo ng with significant enhancements in VOC and JSC,in contrast to 5.35% of the control device value.Moreover,the SCG film-based devices also exhibit superior stability comparing with the control one.This work explicitly paves a novel and general strategy for developing high performance lead-free PSCs.  相似文献   

3.
Mixed cation and anion based perovskites solar cells exhibited enhanced stability under outdoor conditions,however,it yielded limited power conversion efficiency when TiO2 and Spiro-OMeTAD were employed as electron and hole transport layer(ETL/HTL)respectively.The inevitable interfacial recombination of charge carriers at ETL/perovskite and perovskite/HTL interface diminished the efficiency in planar(n-i-p)perovskite solar cells.By employing computational approach for uni-dimensional device simulator,the effect of band offset on charge recombination at both interfaces was investigated.We noted that it acquired cliff structure when the conduction band minimum of the ETL was lower than that of the perovskite,and thus maximized interfacial recombination.However,if the conduction band minimum of ETL is higher than perovskite,a spike structure is formed,which improve the performance of solar cell.An optimum value of conduction band offset allows to reach performance of 25.21%,with an open circuit voltage(VOC)of 1231 mV,a current density JSC of 24.57 mA/cm2 and a fill factor of 83.28%.Additionally,we found that beyond the optimum offset value,large spike structure could decrease the performance.With an optimized energy level of Spiro-OMeTAD and the thickness of mixed-perovskite layer performance of 26.56% can be attained.Our results demonstrate a detailed understanding about the energy level tuning between the charge selective layers and perovskite and how the improvement in PV performance can be achieved by adjusting the energy level offset.  相似文献   

4.
Bioimaging,as a powerful and helpful tool,which allows people to investigate deeply within living organisms,has contributed a lot for both clinical theranostics and scientific research.Pure organic room temperature phosphorescence(RTP)materials with the unique features of ultralong luminescence lifetime and large Stokes shift,can efficiently avoid biological autofluorescence and scattered light through a time-resolved imaging modality,and thus are attracting increasing attention.This review classifies pure organic RTP materials into three categories,including small molecule RTP materials,polymer RTP materials and supramolecular RTP materials,and summarizes the recent advances of pure organic RTP materials for bioimaging applications.  相似文献   

5.
Carbon nanotubes(CNTs),as one-dimensional nanomaterials,show great potential in energy conversion and storage due to their efficient electrical conductivity and mass transfer.However,the security risks,time-consuming and high cost of the preparation process hinder its further application.Here,we develop that a negative pressure rather than a following gas environment can promote the generation of cobalt and nitrogen co-doped CNTs(Co/N-CNTs) by using cobalt zeolitic imidazolate framework(ZIF-67) as a precursor,in which the negative pressure plays a key role in adjusting the size of cobalt nanoparticles and stimulating the rearragement of carbon atoms for forming CNTs.Importantly,the obtained Co/N-CNTs,with high content of pyridinic nitrogen and abundant graphitized structure,exhibit superior catalytic activity for oxygen reduction reaction(ORR) with half-wave potential(E1/2) of 0.85 V and durability in terms of the minimum current loss(2%) after the 30,000 s test.Our development provides a new pathway for large-scale and cost-effective preparation of metal-doped CNTs for various applications.  相似文献   

6.
The pressing demand for high-energy/power lithium-ion batteries requires the deployment of cathode materials with higher capacity and output voltage.Despite more than ten years of research,high-voltage cathode mate-rials,such as high-voltage layered oxides,spinel LiNi0.5Mn1.5O4,and high-voltage polyanionic compounds still cannot be commercially viable due to the instabilities of standard electrolytes,cathode materials,and cathode electrolyte interphases under high-voltage operation.This paper summarizes the recent advances in addressing the surface and interface issues haunting the application of high-voltage cathode materials.The understanding of the limitations and advantages of different modification protocols will direct the future endeavours on advancing high-energy/power lithium-ion batteries.  相似文献   

7.
Suppressing the trap-state density and the energy loss via ternary strategy was demonstrated.Favorable vertical phase distribution with donors(acceptors)accumulated(depleted)at the interface of active layer and charge extraction layer can be obtained by introducing appropriate amount of polymer acceptor N2200 into the systems of PBDB-T:IT-M and PBDB-TF:Y6.In addition,N2200 is gradiently distributed in the vertical direction in the ternary blend film.Various measurements were carried out to study the effects of N2200 on the binary systems.It was found that the optimized morphology especially in vertical direction can significantly decrease the trap state density of the binary blend films,which is beneficial for the charge transport and collection.All these features enable an obvious decrease in charge recombination in both PBDB-T:IT-M and PBDB-TF:Y6 based organic solar cells(OSCs),and power conversion efficiencies(PCEs)of 12.5%and 16.42%were obtained for the ternary OSCs,respectively.This work indicates that it is an effective method to suppress the trap state density and thus improve the device performance through ternary strategy.  相似文献   

8.
A generic coarse-grained bead-and-spring model,mapped onto comb-shaped polycarboxylate-based(PCE)superplasticizers,is developed and studied by Langevin molecular dynamics simulations with implicit solvent and explicit counterions.The agreement on the radius of gyration of the PCEs with experiments shows that our model can be useful in studying the equilibrium sizes of PCEs in solution.The effects of ionic strength,side-chain number,and side-chain length on the conformational behavior of PCEs in solution are explored.Single-chain equilibrium properties,including the radius of gyration,end-to-end distance and persistenee length of the polymer backbone,shape-asphericity parameter,and the mean span dimension,are determined.It is found that with the increase of ionic strength,the equilibrium sizes of the polymers decrease only slightly,and a linear dependenew of the persistence length of backbone on the Debye screening length is found,in good agreement with the theory developed by Dobrynin.Increasing side-chain numbers and/or side-chain lengths increases not only the equilibrium sizes(radius of gyration and mean span)of the polymer as a whole,but also the persistence length of the backbone due to excluded volume interactions.  相似文献   

9.
Laser-structuring is an effective method to promote ion diffusion and improve the performance of lithium-ion battery(LIB)electrodes.In this work,the effects of laser structuring parameters(groove pitch and depth)on the fundamental characteristics of LIB electrode,such as interfacial area,internal resistances,material loss and electrochemical performance,are investigated,LiNi0.5Co0.2Mn0.3O2 cathodes were structured by a femtosecond laser by varying groove depth and pitch,which resulted in a material loss of 5%-14%and an increase of 140%-260%in the in terfacial area between electrode surface and electrolyte.It is shown that the importance of groove depth and pitch on the electrochemical performance(specific capacity and areal discharge capacity)of laser-structured electrode varies with current rates.Groove pitch is more im porta nt at low current rate but groove depth is at high curre nt rate.From the mapping of lithium concentration within the electrodes of varying groove depth and pitch by laser-induced breakdown spectroscopy,it is verified that the groove functions as a diffusion path for lithium ions.The ionic,electronic,and charge transfer resistances measured with symmetric and half cells showed that these internal resistances are differently affected by laser structuring parameters and the changes in porosity,ionic diffusion and electronic pathways.It is demonstrated that the laser structuring parameters for maximum electrode performance and minimum capacity loss should be determined in consideration of the main operating conditions of LIBs.  相似文献   

10.
In order to balance electrochemical kinetics with loading level for achieving efficient energy storage with high areal capacity and good rate capability simultaneously for wearable electronics,herein,2 D meshlike vertical structures(NiCo_2 S_4@Ni(OH)_2) with a high mass loading of 2.17 mg cm-2 and combined merits of both 1 D nanowires and 2 D nanosheets are designed for fabricating flexible hybrid supercapacitors.Particularly,the seamlessly interconnected NiCo_2 S_4 core not only provides high capacity of 287.5 μAh cm-2 but also functions as conductive skeleton for fast electron transport;Ni(OH)_2 sheath occupying the voids in NiCo_2 S_4 meshes contributes extra capacity of 248.4 μAh cm-2;the holey features guarantee rapid ion diffusion along and across NiCO_2 S_4@Ni(OH)_2 meshes.The resultant flexible electrode exhibits a high areal capacity of 535.9 μAh cm-2(246.9 mAh g-1) at 3 mA cm-2 and outstanding rate performance with 84.7% retention at 30 mA cm-2,suggesting efficient utilization of both NiCo_2 S_4 and Ni(OH)_2 with specific capacities approaching to their theoretical values.The flexible solid-state hybrid device based on NiCo_2 S_4@Ni(OH)_2 cathode and Fe_2 O_3 anode delivers a high energy density of 315 μWh cm-2 at the power density of 2.14 mW cm-2 with excellent electrochemical cycling stability.  相似文献   

11.
Catalytic CO2 hydrogenation to methanol is a promising route to mitigate the negative effects of anthropogenic CO2. To develop an efficient Pd/ZnO catalyst, increasing the contact between Pd and ZnO is of the utmost importance, because "naked" Pd favors CO production via the reverse water-gas shift path. Here, we have utilized a ZnO@ZIF-8 core-shell structure to synthesize Pd/ZnO catalysts via Pd immobilization and calcination. The merit of this method is that the porous outer layer can offer abundant "guest rooms" for Pd, ensuring intimate contact between Pd and the post-generated ZnO. The synthesized Pd/ZnO catalysts (PZZ8-T, T denotes the temperature of calcination in degree Celsius) is compared with a ZnO nanorod-immobilized Pd catalyst (PZ). When the catalytic reaction was performed at lower reaction temperatures (250, 270, and 290 ℃), the highest methanol space time yield (STY) and highest STY per Pd achieved by PZ at 290 ℃ were 0.465 g gcat-1 h-1 and 13.0 g gPd-1 h-1, respectively. However, all the PZZ8-T catalysts exhibited methanol selectivity values greater than 67.0% at 290 ℃, in sharp contrast to a methanol selectivity value of 32.8% for PZ at the same temperature. Thus, we performed additional investigations of the PZZ8-T catalysts at 310 and 360 ℃, which are unusually high temperatures for CO2 hydrogenation to methanol because the required endothermic reaction is expected to be severely inhibited at such high temperatures. Interestingly, the PZZ8-T catalysts were observed to achieve a methanol selectivity value of approximately 60% at 310 ℃, and PZZ8-400 was observed to maintain a methanol selectivity value of 51.9% even at a temperature of 360 ℃. Thus, PZZ8-400 attains the highest methanol STY of 0.571 g gcat-1 h-1at 310 ℃. For a better understanding of the structure-performance relationship, we characterized the catalysts using different techniques, focusing especially on the surface properties. X-ray photoelectron spectroscopy (XPS) results indicated a linear relationship between the methanol selectivity and the surface PdZn : Pd ratio, proving that the surface PdZn phase is the active site for CO2 hydrogenation to methanol. Furthermore, analysis of the XPS O 1s spectrum together with the electronic paramagnetic resonance results revealed that both, the oxygen vacancy as well as the ZnO polar surface, played important roles in CO2 activation. Chemisorption techniques provided further quantitative and qualitative information regarding the Pd-ZnO interface that is closely related to the CO2 conversion rate. We believe that our results can provide insight into the catalytic reaction of CO2 hydrogenation from the perspective of surface science. In addition, this work is an illustrative example of the use of novel chemical structures in the fabrication of superior catalysts using a traditional formula.  相似文献   

12.
选择性加氢在功能材料合成和化学产品提纯等化工领域中有非常重要的应用,并且近年来为减少温室效应的影响,将CO_(2)催化选择性加氢转化成其他有应用价值的物质成为研究热点之一。其中热催化是应用较为广泛、易得到多种目标产物并且获得产品收率较高的方法。目前,利用CO_(2)多相热催化加氢制得甲烷、甲醇、轻烯烃等多种高价值的燃料和化学品已取得了一定进展,但仍存在一些难点问题,其中制备高效催化剂是催化加氢反应的关键问题之一。一直以来,研究人员致力于解决催化剂的活性和选择性问题,通过助剂掺杂和加入功能性载体对催化剂进行改性。针对这些问题,本文简要介绍了CO_(2)催化加氢的研究背景,总结了近5年来热催化CO_(2)加氢制得甲烷、甲醇、轻烯烃产品过程中使用催化剂的种类及对加氢反应的影响,期望为CO_(2)多相催化加氢中新型催化剂的开发提供参考。  相似文献   

13.
Cu/ZrO_2催化剂的结构及其CO_2加氢合成甲醇催化反应性能   总被引:3,自引:0,他引:3  
采用低温氮气吸脱附、XRD、TPR、In-situ IR和XPS等表征手段,对分步沉淀法、浸渍沉淀法和固态反应法制备的CuO/ZrO2催化剂进行表征,同时考察了其CO2加氢合成甲醇反应性能。结果表明,制备方法对CuO/ZrO2的物理结构和还原性能影响很大,其中浸渍沉淀法制备的催化剂Cu与ZrO2相互作用最强,并显示了较高的CO2转化率和甲醇收率。Cu与ZrO相互作用的强弱直接影响CO加氢合成甲醇反应性能的优劣,而催化剂的比表面积不是影响反应性能的主导因素。  相似文献   

14.
Using renewable green hydrogen and carbon dioxide (CO2) to produce methanol is one of the fundamental ways to reduce CO2 emissions in the future, and research and development related to catalysts for efficient and stable methanol synthesis is one of the key factors in determining the entire synthesis process. Metal nanoparticles stabilized on a support are frequently employed to catalyze the methanol synthesis reaction. Metal-support interactions (MSIs) in these supported catalysts can play a significant role in catalysis. Tuning the MSI is an effective strategy to modulate the activity, selectivity, and stability of heterogeneous catalysts. Numerous studies have been conducted on this topic; however, a systematic understanding of the role of various strengths of MSI is lacking. Herein, three Cu/ZnO-SiO2 catalysts with different strengths of MSI, namely, normal precipitation Cu/ZnO-SiO2 (Nor-CZS), co-precipitation Cu/ZnO-SiO2 (Co-CZS), and reverse precipitation Cu/ZnO-SiO2 (Re-CZS), were successfully prepared to determine the role of such interactions in the hydrogenation of CO2 to methanol. The results of temperature-programmed reduction (H2-TPR) and X-ray photoelectron spectroscopy (XPS) characterization illustrated that the MSI of the catalysts was considerably affected by the precipitation sequence. Fourier transform infrared reflection spectroscopy (FT-IR) results indicated that the Cu species existed as CuO in all cases and that copper phyllosilicate was absent (except for strong Cu-SiO2 interaction). Transmission electron microscopy (TEM), X-ray diffraction (XRD), and N2O chemical titration results revealed that strong interactions between the Cu and Zn species would promote the dispersion of Cu species, thereby leading to a higher CO2 conversion rate and improved catalytic stability. As expected, the Re-CZS catalyst exhibited the highest activity with 12.4% CO2 conversion, followed by the Co-CZS catalyst (12.1%), and the Nor-CZS catalyst (9.8%). After the same reaction time, the normalized CO2 conversion of the three catalysts decreased in the following order: Re-CZS (75%) > Co-CZS (70%) > Nor-CZS (65%). Notably, the methanol selectivity of the Re-CZS catalyst was found to level off after a prolonged period, in contrast to that of Co-CZS and Nor-CZS. Investigation of the structural evolution of the catalyst with time on stream revealed that the high methanol selectivity of the catalyst was caused by the reconstruction of the catalyst, which was induced by the strong MSI between the Cu and Zn species, and the migration of ZnO onto Cu species, which caused an enlargement of the Cu/ZnO interface. This work offers an alternative strategy for the rational and optimized design of efficient catalysts.  相似文献   

15.
刘军辉  宋亚坤  宋春山  郭新闻 《应用化学》2020,37(10):1099-1111
CO2加氢和费托合成反应是C1化学中重要的研究领域,CO2加氢制备高附加值化学品和燃料有助于降低大气中CO2浓度,减轻化石燃料消耗的压力;费托合成反应是以非石油资源为原料生产液体燃料和化学品的重要路径。 开发新型、高效、稳定的催化剂是CO2加氢和费托合成反应的关键点之一。 利用金属-有机骨架(Metal-Organic Frameworks,MOFs)材料的特点制备的MOFs衍生催化剂在CO2加氢和费托合成反应中具有较好的应用前景。 本文综述了CO2加氢和费托合成反应中MOFs衍生催化剂的制备方法,以及催化剂在各反应中的催化性能,并对目前所存在的问题以及今后的发展进行了总结和展望。  相似文献   

16.
化石燃料的利用为人类社会带来了前所未有的繁荣和发展. 然而, 化石燃料燃烧引起的过量的二氧化碳(CO2)排放导致全球气候变化和海洋酸化; 而且作为一种有限的资源, 化石燃料的消耗将迫使人们寻找其它碳源以维持可持续的发展. 利用可再生能源获取电能分解水制得的绿色氢气(H2)与捕集后的CO2反应制成甲醇, 不仅能有效利用工业废气中多余的CO2, 还能获取清洁、 可再生的甲醇化学品, 该过程的技术核心是开发高效稳定的CO2加氢制甲醇催化剂. 本文综合评述了现有研究关注较多的多相催化CO2加氢制甲醇催化剂的反应机理和构效关系, 总结了目前多相催化CO2加氢制甲醇催化剂(Cu基催化剂、 贵金属与双金属催化剂、 氧化物催化剂以及其它新型催化剂)的设计与合成方面的研究进展, 最后对该领域所面临的机遇和挑战进行了展望.  相似文献   

17.
随着二氧化碳(CO2)排放量的不断增加, 全球变暖和气候变化的加剧对人类的生存环境产生了巨大的影响. CO2作为廉价、 可再生的碳氧资源, 将其转化为高附加值化学品是绿色化学及能源领域的重要研究课题之一, 受到广泛关注. Pd基催化剂由于具有优异的加氢能力以及良好的抗烧结、 抗毒化性能, 作为CO2催化转化最有前途的催化剂被广泛应用和研究. 本文主要对Pd基催化剂上CO2加氢制备HCOOH, CO, CH4和甲醇等小分子能源化合物的研究进展进行综合评述, 重点关注Pd基催化剂上CO2分子的吸附/活化位点、 催化剂的金属-载体强相互作用及表界面组成等对催化剂活性和选择性的影响以及催化反应机理.  相似文献   

18.
用CaO作为改性助剂,采用并流共沉淀法制备了CuO∶ZnO∶ZrO_2为5∶4∶1(物质的量比),CaO添加量为0、1%、2%、4%、8%、16%(摩尔分数)的六组催化剂。用X射线衍射(XRD)、微商热重(TG-DTG)、傅里叶红外(FT-IR)、N2吸附脱附(BET)、X射线光电子能谱(XPS)、氢气程序升温还原(H_2-TPR)、CO_2程序升温脱附(CO_2-TPD)、NH_3程序升温脱附(NH_3-TPD)对催化剂进行了表征。用自制固定床评价了催化剂活性。结果表明,添加CaO后,催化剂路易斯酸性和表面碱性增强;催化剂母体中高温碳酸盐含量增加,热稳定性增强,CuO颗粒粒径变小,Cu-Zn协同作用增强,Cu比表面积增大,分散性变好。催化剂活性受到表面酸碱性、铜比表面积、Cu-Zn协同作用和铜分散性共同影响。当CaO为2%时,铜比表面积为79.3 m2/g、铜分散度为34.8%、CO_2转化率为24.55%、甲醇选择性为19.01%、甲醇收率为0.044 g/(gcat·h),催化剂活性最好。过量CaO占据催化剂孔道和覆盖表面活性位,使催化剂路易斯酸性和表面碱性过强,CuO与H_2有效接触减少,CO_2难以脱附,催化活性下降。因此,适量CaO(2%)添加可促进CO_2加氢反应合成甲醇。  相似文献   

19.
化石燃料的广泛使用导致大气中CO2的排放量急剧增加,进而引起全球变暖和海洋酸化等一系列问题.CO加氢(费托合成)反应是利用非石油来源的原料生产液体燃料和化学品的一种重要途径.同时,利用可再生的H2将CO2转化为高附加值的产品有利于减少对化石燃料的依赖,减轻由于大气中CO2浓度过高带来的负面影响.开发新型、高效、稳定的催化剂是费托合成和CO2加氢制高附加值烃的关键因素之一.Fe基、Co基和Ru基催化剂是费托合成中常用的催化剂.而在CO2加氢反应中,Co基和Ru基催化剂上主要发生甲烷化反应,几乎没有长链烃生成.Fe基催化剂在费托合成和CO2加氢反应中均表现出优异的催化生成长链烃性能.同时,Fe储量丰富和价格便宜的特点也促进Fe基催化剂在两个反应中的广泛应用.一般认为,在Fe基催化剂上CO2通过逆水煤气变换反应生成CO,CO通过费托合成反应继续加氢生成烃类.因此,CO2加氢反应和费托合成反应有相似之处,同时也有较大的区别.本文从活性相、助剂和载体的角度综述了各组分在Fe基催化剂催化CO/CO2加氢反应中的作用,总结了其中的区别与联系.催化剂在反应中会发生复杂的相变过程,形成多种铁物种;其中,碳化铁(χ-Fe5C2,ε-Fe2C,Fe7C3和θ-Fe3C)在费托合成反应中是C-C偶联的活性相,但对于θ-Fe3C现还存在一些争议.在CO2加氢反应中Fe3O4催化逆水煤气变换反应,碳化铁催化CO加氢反应.金属助剂对CO/CO2加氢反应的促进作用较为相似,在两个反应中碱金属的促进作用最为明显.费托合成反应对载体有较强的适应性,而CO2加氢反应对载体敏感性较强,Al2O3,ZrO2和碳材料载体效果较好.本文还总结了近些年来基于对活性相、助剂和载体的深入理解设计制备的一些新型催化剂及其在费托合成和CO2加氢反应中的应用,包括具有新颖结构的催化剂、金属-有机骨架衍生催化剂以及与沸石分子筛结合的双功能催化剂.最后,还分析了目前Fe基催化剂在费托合成和CO2加氢反应应用中所面临的问题和挑战,并对未来的发展趋势进行了展望.  相似文献   

20.
化石燃料的广泛使用导致大气中CO2的排放量急剧增加,进而引起全球变暖和海洋酸化等一系列问题.CO加氢(费托合成)反应是利用非石油来源的原料生产液体燃料和化学品的一种重要途径.同时,利用可再生的H2将CO2转化为高附加值的产品有利于减少对化石燃料的依赖,减轻由于大气中CO2浓度过高带来的负面影响.开发新型、高效、稳定的催化剂是费托合成和CO2加氢制高附加值烃的关键因素之一.Fe基、Co基和Ru基催化剂是费托合成中常用的催化剂.而在CO2加氢反应中,Co基和Ru基催化剂上主要发生甲烷化反应,几乎没有长链烃生成.Fe基催化剂在费托合成和CO2加氢反应中均表现出优异的催化生成长链烃性能.同时,Fe储量丰富和价格便宜的特点也促进Fe基催化剂在两个反应中的广泛应用.一般认为,在Fe基催化剂上CO2通过逆水煤气变换反应生成CO,CO通过费托合成反应继续加氢生成烃类.因此,CO2加氢反应和费托合成反应有相似之处,同时也有较大的区别.本文从活性相、助剂和载体的角度综述了各组分在Fe基催化剂催化CO/CO2加氢反应中的作用,总结了其中的区别与联系.催化剂在反应中会发生复杂的相变过程,形成多种铁物种;其中,碳化铁(χ-Fe5C2,ε-Fe2C,Fe7C3和θ-Fe3C)在费托合成反应中是C-C偶联的活性相,但对于θ-Fe3C现还存在一些争议.在CO2加氢反应中Fe3O4催化逆水煤气变换反应,碳化铁催化CO加氢反应.金属助剂对CO/CO2加氢反应的促进作用较为相似,在两个反应中碱金属的促进作用最为明显.费托合成反应对载体有较强的适应性,而CO2加氢反应对载体敏感性较强,Al2O3,ZrO2和碳材料载体效果较好.本文还总结了近些年来基于对活性相、助剂和载体的深入理解设计制备的一些新型催化剂及其在费托合成和CO2加氢反应中的应用,包括具有新颖结构的催化剂、金属-有机骨架衍生催化剂以及与沸石分子筛结合的双功能催化剂.最后,还分析了目前Fe基催化剂在费托合成和CO2加氢反应应用中所面临的问题和挑战,并对未来的发展趋势进行了展望.  相似文献   

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