WASP(Wallops Arc Second Pointer)是由美国国家航空航天局(NASA)开发的一种临近空间天文台亚角秒级指向系统,旨在构建可适配多类科学载荷的临近空间天文观测平台.WASP系统由指向控制系统(PCS)和星跟踪器子系统(CARDS)组成,该系统结合...WASP(Wallops Arc Second Pointer)是由美国国家航空航天局(NASA)开发的一种临近空间天文台亚角秒级指向系统,旨在构建可适配多类科学载荷的临近空间天文观测平台.WASP系统由指向控制系统(PCS)和星跟踪器子系统(CARDS)组成,该系统结合精密机械和电子组件,辅以超压气球技术,能在临近空间执行长时飞行任务,同时保持亚角秒级的指向精度.WASP系统的灵活性和标准化设计使其能够适配多种科学载荷,满足不同的任务需求.在空间科学领域,WASP系统的应用不仅拓宽了高空科学气球的研究范围,也为临近空间天文台的建设提供了创新方案,推动了对临近空间的探索.WASP系统的成功试飞和应用,为其在行星科学、天体物理学和地球观测等领域的应用奠定了基础,也为中国临近空间科学的发展提供了可靠的参考.展开更多
In practical applications,noble metal doping is often used to prepare high performance gas sensors,but more noble metal doping will lead to higher preparation costs.In this study,CeO_(2)/ZnO-Pd with low palladium cont...In practical applications,noble metal doping is often used to prepare high performance gas sensors,but more noble metal doping will lead to higher preparation costs.In this study,CeO_(2)/ZnO-Pd with low palladium content was prepared by ultrasonic method with fast response and high selectivity for acetone sensing.With the same amount of palladium added,the selectivity coefficient of CeO_(2)/ZnO-Pd is 1.88 times higher than that of the stirred sensor.Compared with the pure PdO-doped CeO_(2)/ZnO-PdO material,the content of Pd in CeO_(2)/ZnO-PdO is about 30%of that in CeO_(2)/ZnO-PdO,but the selectivity coefficient for acetone is 2.56 times higher.The CeO_(2)/ZnO-Pd sensor has a higher response(22.54)to 50×10^(−6) acetone at 300℃and the selectivity coefficient is 2.57 times that of the CeO_(2)/ZnO sensor.The sensor has a sub-second response time(0.6 s)and still has a 2.36 response to 330×10^(−9) of acetone.Ultrasonic doping makes Pd particles smaller and increases the contact area with gas.Meanwhile,the composition of n-p-n heterojunction and the synergistic effect of Pd/PdO improve the sensor performance.It shows that ultrasonic Pd doping provides a way to improve the utilization rate of doped metals and prepare highly selective gas sensors.展开更多
文摘WASP(Wallops Arc Second Pointer)是由美国国家航空航天局(NASA)开发的一种临近空间天文台亚角秒级指向系统,旨在构建可适配多类科学载荷的临近空间天文观测平台.WASP系统由指向控制系统(PCS)和星跟踪器子系统(CARDS)组成,该系统结合精密机械和电子组件,辅以超压气球技术,能在临近空间执行长时飞行任务,同时保持亚角秒级的指向精度.WASP系统的灵活性和标准化设计使其能够适配多种科学载荷,满足不同的任务需求.在空间科学领域,WASP系统的应用不仅拓宽了高空科学气球的研究范围,也为临近空间天文台的建设提供了创新方案,推动了对临近空间的探索.WASP系统的成功试飞和应用,为其在行星科学、天体物理学和地球观测等领域的应用奠定了基础,也为中国临近空间科学的发展提供了可靠的参考.
基金Project(2023JJ10005)supported by the Natural Science Foundation of Hunan Province,ChinaProjects(51772082,51804106)supported by the National Natural Science Foundation of China。
文摘In practical applications,noble metal doping is often used to prepare high performance gas sensors,but more noble metal doping will lead to higher preparation costs.In this study,CeO_(2)/ZnO-Pd with low palladium content was prepared by ultrasonic method with fast response and high selectivity for acetone sensing.With the same amount of palladium added,the selectivity coefficient of CeO_(2)/ZnO-Pd is 1.88 times higher than that of the stirred sensor.Compared with the pure PdO-doped CeO_(2)/ZnO-PdO material,the content of Pd in CeO_(2)/ZnO-PdO is about 30%of that in CeO_(2)/ZnO-PdO,but the selectivity coefficient for acetone is 2.56 times higher.The CeO_(2)/ZnO-Pd sensor has a higher response(22.54)to 50×10^(−6) acetone at 300℃and the selectivity coefficient is 2.57 times that of the CeO_(2)/ZnO sensor.The sensor has a sub-second response time(0.6 s)and still has a 2.36 response to 330×10^(−9) of acetone.Ultrasonic doping makes Pd particles smaller and increases the contact area with gas.Meanwhile,the composition of n-p-n heterojunction and the synergistic effect of Pd/PdO improve the sensor performance.It shows that ultrasonic Pd doping provides a way to improve the utilization rate of doped metals and prepare highly selective gas sensors.