以γ-Al2O3为原料,炭黑(C)为还原剂,通过碳热还原氮化(carbothermal reduction and nitridation,CTRN)工艺合成了氮氧化铝(AlON)粉体,并通过气压烧结工艺制备了AlON透明陶瓷.借助X射线衍射分析研究了反应温度、保温时间及碳用量对CTRN...以γ-Al2O3为原料,炭黑(C)为还原剂,通过碳热还原氮化(carbothermal reduction and nitridation,CTRN)工艺合成了氮氧化铝(AlON)粉体,并通过气压烧结工艺制备了AlON透明陶瓷.借助X射线衍射分析研究了反应温度、保温时间及碳用量对CTRN反应产物相组成的影响,借助电子探针研究了AlON透明陶瓷的微观结构.研究结果表明:该反应主要受热力学控制,动力学因素也具有重要作用,反应温度和保温时间对AlON粉体的合成均具有重要影响.在1300℃时,开始发生CTRN反应;随着反应温度的升高,AlN的生成量逐渐增加;在1650℃时,开始形成AlON;在1700℃时,AlON的CTRN合成反应基本完成,产物中除含有极少量的AlN外,其余均为AlON相;进一步提高反应温度至1750℃,产物中残余AlN的量有所减少,但不能完全消除.采用CTRN工艺制备的粉体为原料,经1950℃高温气氛反应6h可制备出AlON透明陶瓷,材料微观结构致密、均匀,平均晶粒尺寸约50μm。展开更多
The polarization switching plays a crucial role in controlling the final products in the catalytic pro-cess.The effect of polarization orientation on nitrogen reduction was investigated by anchoring transition metal a...The polarization switching plays a crucial role in controlling the final products in the catalytic pro-cess.The effect of polarization orientation on nitrogen reduction was investigated by anchoring transition metal atoms to form active centers on ferroelectric material In_(2)Se_(3).During the polariza-tion switching process,the difference in surface electrostatic potential leads to a redistribution of electronic states.This affects the interaction strength between the adsorbed small molecules and the catalyst substrate,thereby altering the reaction barrier.In addition,the surface states must be considered to prevent the adsorption of other small molecules(such as *O,*OH,and *H).Further-more,the V@↓-In_(2)Se_(3) possesses excellent catalytic properties,high electrochemical and thermody-namic stability,which facilitates the catalytic process.Machine learning also helps us further ex-plore the underlying mechanisms.The systematic investigation provides novel insights into the design and application of two-dimensional switchable ferroelectric catalysts for various chemical processes.展开更多
The electrocatalytic N_(2)reduction reaction(NRR)is expected to supersede the traditional Haber-Bosch technology for NH3 production under ambient conditions.The activity and selectivity of electrochemical NRR are rest...The electrocatalytic N_(2)reduction reaction(NRR)is expected to supersede the traditional Haber-Bosch technology for NH3 production under ambient conditions.The activity and selectivity of electrochemical NRR are restricted to a strong polarized electric field induced by the catalyst,correct electron transfer direction,and electron tunneling distance between bare electrode and active sites.By coupling the chemical vapor deposition method with the poly(methyl methacylate)-transfer method,an ultrathin sandwich catalyst,i.e.,Fe atoms(polarized electric field layer)sandwiched between ultrathin(within electron tunneling distance)BN(catalyst layer)and graphene film(conducting layer),is fabricated for electrocatalytic NRR.The sandwich catalyst not only controls the transfer of electrons to the BN surface in the correct direction under applied voltage but also suppresses hydrogen evolution reaction by constructing a neutral polarization electric field without metal exposure.The sandwich electrocatalyst NRR system achieve NH3 yield of 8.9μg h^(−1)cm^(−2)and Faradaic Efficiency of 21.7%.The N_(2)adsorption,activation,and polarization electric field changes of three sandwich catalysts(BN-Fe-G,BN-Fe-BN,and G-Fe-G)during the electrocatalytic NRR are investigated by experiments and density functional theory simulations.Driven by applied voltage,the neutral polarized electric field induced by BN-Fe-G leads to the high activity of electrocatalytic NRR.展开更多
文摘以γ-Al2O3为原料,炭黑(C)为还原剂,通过碳热还原氮化(carbothermal reduction and nitridation,CTRN)工艺合成了氮氧化铝(AlON)粉体,并通过气压烧结工艺制备了AlON透明陶瓷.借助X射线衍射分析研究了反应温度、保温时间及碳用量对CTRN反应产物相组成的影响,借助电子探针研究了AlON透明陶瓷的微观结构.研究结果表明:该反应主要受热力学控制,动力学因素也具有重要作用,反应温度和保温时间对AlON粉体的合成均具有重要影响.在1300℃时,开始发生CTRN反应;随着反应温度的升高,AlN的生成量逐渐增加;在1650℃时,开始形成AlON;在1700℃时,AlON的CTRN合成反应基本完成,产物中除含有极少量的AlN外,其余均为AlON相;进一步提高反应温度至1750℃,产物中残余AlN的量有所减少,但不能完全消除.采用CTRN工艺制备的粉体为原料,经1950℃高温气氛反应6h可制备出AlON透明陶瓷,材料微观结构致密、均匀,平均晶粒尺寸约50μm。
文摘The polarization switching plays a crucial role in controlling the final products in the catalytic pro-cess.The effect of polarization orientation on nitrogen reduction was investigated by anchoring transition metal atoms to form active centers on ferroelectric material In_(2)Se_(3).During the polariza-tion switching process,the difference in surface electrostatic potential leads to a redistribution of electronic states.This affects the interaction strength between the adsorbed small molecules and the catalyst substrate,thereby altering the reaction barrier.In addition,the surface states must be considered to prevent the adsorption of other small molecules(such as *O,*OH,and *H).Further-more,the V@↓-In_(2)Se_(3) possesses excellent catalytic properties,high electrochemical and thermody-namic stability,which facilitates the catalytic process.Machine learning also helps us further ex-plore the underlying mechanisms.The systematic investigation provides novel insights into the design and application of two-dimensional switchable ferroelectric catalysts for various chemical processes.
文摘The electrocatalytic N_(2)reduction reaction(NRR)is expected to supersede the traditional Haber-Bosch technology for NH3 production under ambient conditions.The activity and selectivity of electrochemical NRR are restricted to a strong polarized electric field induced by the catalyst,correct electron transfer direction,and electron tunneling distance between bare electrode and active sites.By coupling the chemical vapor deposition method with the poly(methyl methacylate)-transfer method,an ultrathin sandwich catalyst,i.e.,Fe atoms(polarized electric field layer)sandwiched between ultrathin(within electron tunneling distance)BN(catalyst layer)and graphene film(conducting layer),is fabricated for electrocatalytic NRR.The sandwich catalyst not only controls the transfer of electrons to the BN surface in the correct direction under applied voltage but also suppresses hydrogen evolution reaction by constructing a neutral polarization electric field without metal exposure.The sandwich electrocatalyst NRR system achieve NH3 yield of 8.9μg h^(−1)cm^(−2)and Faradaic Efficiency of 21.7%.The N_(2)adsorption,activation,and polarization electric field changes of three sandwich catalysts(BN-Fe-G,BN-Fe-BN,and G-Fe-G)during the electrocatalytic NRR are investigated by experiments and density functional theory simulations.Driven by applied voltage,the neutral polarized electric field induced by BN-Fe-G leads to the high activity of electrocatalytic NRR.