Layered oxides have attracted significant attention as cathodes for sodium-ion batteries(SIBs)due to their compositional versatility and tuneable electrochemical performance.However,these materials still face challeng...Layered oxides have attracted significant attention as cathodes for sodium-ion batteries(SIBs)due to their compositional versatility and tuneable electrochemical performance.However,these materials still face challenges such as structural phase transitions,Na^(+)/vacancy ordering,and Jahn–Teller distortion effect,resulting in severe capacity decay and sluggish ion kinetics.We develop a novel Cu/Y dual-doping strategy that leads to the formation of"Na–Y"interlayer aggregates,which act as structural pillars within alkali metal layers,enhancing structural stability and disrupting the ordered arrangement of Na^(+)/vacancies.This disruption leads to a unique coexistence of ordered and disordered Na^(+)/vacancy states with near-zero strain,which significantly improves Na^(+)diffusion kinetics.This structural innovation not only mitigates the unfavorable P2–O2 phase transition but also facilitates rapid ion transport.As a result,the doped material demonstrates exceptional electrochemical performance,including an ultra-long cycle life of 3000 cycles at 10 C and an outstanding high-rate capability of~70 mAh g^(−1)at 50 C.The discovery of this novel interlayer pillar,along with its role in modulating Na^(+)/vacancy arrangements,provides a fresh perspective on engineering layered oxides.It opens up promising new pathways for the structural design of advanced cathode materials toward efficient,stable,and high-rate SIBs.展开更多
Objectives:Philadelphia chromosome-positive B-cell acute lymphoblastic leukemia and Philadelphia-like B-cell acute lymphoblastic leukemia(Ph+/Ph-like ALL)constitute the majority of relapsed/refractory B-ALL(R/R B-ALL)...Objectives:Philadelphia chromosome-positive B-cell acute lymphoblastic leukemia and Philadelphia-like B-cell acute lymphoblastic leukemia(Ph+/Ph-like ALL)constitute the majority of relapsed/refractory B-ALL(R/R B-ALL)cases,highlighting an urgent need to discover new therapeutic targets.This study aims to elucidate the mechanisms underlying poor prognosis in Ph+/Ph-like ALL through transcriptome sequencing and functional cytological assays,with the goal of informing new clinical treatment strategies.Results:Transcriptomic analysis of Ph+/Ph-like ALL patients revealed that low expression of P2X Purinoceptor 1(P2RX1)was associated with unfavorable outcomes.Specifically,patients with poor prognosis and low P2RX1 expression exhibited downregulation of genes involved in energy and calcium metabolism pathways,along with upregulation of genes governing key cellular processes such as cell proliferation(e.g.,MYC),cell cycle progression(e.g.,CCND2),and apoptosis inhibition(e.g.,DASP6).Cellular experiments demonstrated that SUP-B15 cells overexpressing P2RX1 displayed elevated intracellular levels of ATP,calcium,and glucose,together with enhanced glycolytic capacity,compared to empty vector controls.Treatment of SUP-B15 cells with dexamethasone(Dex),Imatinib,or their combination significantly suppressed proliferation and promoted apoptosis,which was accompanied by increases in intracellular ATP,calcium,and glucose.Moreover,exogenous ATP administration(a P2RX1 agonist)enhanced apoptosis and inhibited proliferation in control cells.Conversely,treatment with NF449(a P2RX1 inhibitor)increased proliferation in both P2RX1-overexpressing and control SUP-B15 cells.Conclusion:Our findings indicate that P2RX1 may exert this function through modulating energy metabolism and calcium homeostasis,resulting in elevated intracellular calcium levels.Sustained elevation of calcium promotes apoptosis,whereas exogenous ATP activates P2RX1,enhances calcium influx,and attenuates the suppression of apoptosis associated with P2RX1 underexpression,ultimately correlating with improved treatment response.展开更多
P2P2B模式下云服务投入是工业互联网(industrial internet of things,IIoT)平台的关键战略决策之一.构建由IIoT平台、龙头企业、潜在客户构成的演化博弈模型,研究IIoT平台在公有云研发投入和私有云研发投入中的策略选择,及其与龙头企业...P2P2B模式下云服务投入是工业互联网(industrial internet of things,IIoT)平台的关键战略决策之一.构建由IIoT平台、龙头企业、潜在客户构成的演化博弈模型,研究IIoT平台在公有云研发投入和私有云研发投入中的策略选择,及其与龙头企业的生态合作问题.结果表明:虽然公有云存在数据泄露隐患,但较高的规模收益仍会吸引IIoT平台投入公有云研发,而平台搭建期内龙头企业的高合作意愿会促使平台投入私有云,随着龙头企业合作研发的比例增加,平台又将改变其投入策略.驱动龙头企业合作的因素可以是成本收益、技术提升等直接因素,也可以是规模收益、数据泄露概率等间接因素.最后,基于平台生命周期探讨了初创期、平台搭建期与生态系统期IIoT平台的系统稳定策略,并得到相应的管理启示.展开更多
电转气(power to gas, P2G)技术可将电能转化为天然气,在实现综合能源系统低碳经济调度方面发挥着重要作用。为解决P2G过程中O_(2)未充分利用的问题并进一步降低碳排放,文中提出一种考虑P2G富氧改进和混合光能利用的低碳综合能源系统。...电转气(power to gas, P2G)技术可将电能转化为天然气,在实现综合能源系统低碳经济调度方面发挥着重要作用。为解决P2G过程中O_(2)未充分利用的问题并进一步降低碳排放,文中提出一种考虑P2G富氧改进和混合光能利用的低碳综合能源系统。首先,利用P2G生产的O_(2)与CO_(2)混合作为助燃气体,P2G利用碳捕集的CO_(2)制造天然气供给燃气机组使用;然后,因锅炉效率受O_(2)浓度影响,通过遗传算法和Gurobi求解器的联合算法得出耗氧设备各时段的最优供氧状态;最后,通过混合光能利用提升光能效率,以减少化石能源使用。将富氧燃烧和混合光能利用引入综合能源系统,构建考虑P2G富氧改进和混合光能利用的综合能源系统低碳经济运行模型,并设置场景进行对比验证。仿真结果显示,对比富氧改进前CO_(2)排放量降低75.83%,对比无混合光能场景光能总出力增加9.79%,表明所提模型可有效降低碳排放和运行成本。展开更多
为了实现“双碳”目标、促进多能源互补,构建以新能源为主体的新型电力系统,文中建立了电转气-碳捕集利用与封存装置(power to gas and carbon capture utilization and storage,P2G-CCUS)耦合系统下含光热发电(concentrating solar pow...为了实现“双碳”目标、促进多能源互补,构建以新能源为主体的新型电力系统,文中建立了电转气-碳捕集利用与封存装置(power to gas and carbon capture utilization and storage,P2G-CCUS)耦合系统下含光热发电(concentrating solar power,CSP)站的虚拟电厂(virtual power plant,VPP)优化调度模型,考虑需求响应(demand response,DR)参与调峰市场(peak shaving market,PSM)制定分时电价为系统带来收益,从而进一步降低系统运行成本,并引入短期风功率预测及熵值权重法协助后期调度求解。在多能源互补层面,针对风能特点建立风电与CSP联合运行系统。在低碳化方面,建立P2G-CCUS耦合系统,其中包含两段式电转气、燃气轮机(gas turbine,GT)和碳捕集利用与封存系统的数学模型,提出以运行成本最低、碳排放量最小为目标的优化调度策略。采用MATLAB调用CPLEX进行求解,通过设置不同的场景进行对比,结果表明文中所提的优化调度策略可充分实现碳循环利用,极大限度地减少碳排放,具有显著的经济及社会效益。展开更多
基金supported by the“Pioneer”and“Leading Goose”R&D Program of Zhejiang Province of China(No.2024C01056)。
文摘Layered oxides have attracted significant attention as cathodes for sodium-ion batteries(SIBs)due to their compositional versatility and tuneable electrochemical performance.However,these materials still face challenges such as structural phase transitions,Na^(+)/vacancy ordering,and Jahn–Teller distortion effect,resulting in severe capacity decay and sluggish ion kinetics.We develop a novel Cu/Y dual-doping strategy that leads to the formation of"Na–Y"interlayer aggregates,which act as structural pillars within alkali metal layers,enhancing structural stability and disrupting the ordered arrangement of Na^(+)/vacancies.This disruption leads to a unique coexistence of ordered and disordered Na^(+)/vacancy states with near-zero strain,which significantly improves Na^(+)diffusion kinetics.This structural innovation not only mitigates the unfavorable P2–O2 phase transition but also facilitates rapid ion transport.As a result,the doped material demonstrates exceptional electrochemical performance,including an ultra-long cycle life of 3000 cycles at 10 C and an outstanding high-rate capability of~70 mAh g^(−1)at 50 C.The discovery of this novel interlayer pillar,along with its role in modulating Na^(+)/vacancy arrangements,provides a fresh perspective on engineering layered oxides.It opens up promising new pathways for the structural design of advanced cathode materials toward efficient,stable,and high-rate SIBs.
基金supported by Guangdong Province Basic and Applied Basic Research Fund Project(2023A1515220104)Open Fund of Key Laboratory of Hepatoaplenic Surgery,Ministry of Education(Award Number:GPKF202407).
文摘Objectives:Philadelphia chromosome-positive B-cell acute lymphoblastic leukemia and Philadelphia-like B-cell acute lymphoblastic leukemia(Ph+/Ph-like ALL)constitute the majority of relapsed/refractory B-ALL(R/R B-ALL)cases,highlighting an urgent need to discover new therapeutic targets.This study aims to elucidate the mechanisms underlying poor prognosis in Ph+/Ph-like ALL through transcriptome sequencing and functional cytological assays,with the goal of informing new clinical treatment strategies.Results:Transcriptomic analysis of Ph+/Ph-like ALL patients revealed that low expression of P2X Purinoceptor 1(P2RX1)was associated with unfavorable outcomes.Specifically,patients with poor prognosis and low P2RX1 expression exhibited downregulation of genes involved in energy and calcium metabolism pathways,along with upregulation of genes governing key cellular processes such as cell proliferation(e.g.,MYC),cell cycle progression(e.g.,CCND2),and apoptosis inhibition(e.g.,DASP6).Cellular experiments demonstrated that SUP-B15 cells overexpressing P2RX1 displayed elevated intracellular levels of ATP,calcium,and glucose,together with enhanced glycolytic capacity,compared to empty vector controls.Treatment of SUP-B15 cells with dexamethasone(Dex),Imatinib,or their combination significantly suppressed proliferation and promoted apoptosis,which was accompanied by increases in intracellular ATP,calcium,and glucose.Moreover,exogenous ATP administration(a P2RX1 agonist)enhanced apoptosis and inhibited proliferation in control cells.Conversely,treatment with NF449(a P2RX1 inhibitor)increased proliferation in both P2RX1-overexpressing and control SUP-B15 cells.Conclusion:Our findings indicate that P2RX1 may exert this function through modulating energy metabolism and calcium homeostasis,resulting in elevated intracellular calcium levels.Sustained elevation of calcium promotes apoptosis,whereas exogenous ATP activates P2RX1,enhances calcium influx,and attenuates the suppression of apoptosis associated with P2RX1 underexpression,ultimately correlating with improved treatment response.
文摘P2P2B模式下云服务投入是工业互联网(industrial internet of things,IIoT)平台的关键战略决策之一.构建由IIoT平台、龙头企业、潜在客户构成的演化博弈模型,研究IIoT平台在公有云研发投入和私有云研发投入中的策略选择,及其与龙头企业的生态合作问题.结果表明:虽然公有云存在数据泄露隐患,但较高的规模收益仍会吸引IIoT平台投入公有云研发,而平台搭建期内龙头企业的高合作意愿会促使平台投入私有云,随着龙头企业合作研发的比例增加,平台又将改变其投入策略.驱动龙头企业合作的因素可以是成本收益、技术提升等直接因素,也可以是规模收益、数据泄露概率等间接因素.最后,基于平台生命周期探讨了初创期、平台搭建期与生态系统期IIoT平台的系统稳定策略,并得到相应的管理启示.
文摘电转气(power to gas, P2G)技术可将电能转化为天然气,在实现综合能源系统低碳经济调度方面发挥着重要作用。为解决P2G过程中O_(2)未充分利用的问题并进一步降低碳排放,文中提出一种考虑P2G富氧改进和混合光能利用的低碳综合能源系统。首先,利用P2G生产的O_(2)与CO_(2)混合作为助燃气体,P2G利用碳捕集的CO_(2)制造天然气供给燃气机组使用;然后,因锅炉效率受O_(2)浓度影响,通过遗传算法和Gurobi求解器的联合算法得出耗氧设备各时段的最优供氧状态;最后,通过混合光能利用提升光能效率,以减少化石能源使用。将富氧燃烧和混合光能利用引入综合能源系统,构建考虑P2G富氧改进和混合光能利用的综合能源系统低碳经济运行模型,并设置场景进行对比验证。仿真结果显示,对比富氧改进前CO_(2)排放量降低75.83%,对比无混合光能场景光能总出力增加9.79%,表明所提模型可有效降低碳排放和运行成本。
文摘为了实现“双碳”目标、促进多能源互补,构建以新能源为主体的新型电力系统,文中建立了电转气-碳捕集利用与封存装置(power to gas and carbon capture utilization and storage,P2G-CCUS)耦合系统下含光热发电(concentrating solar power,CSP)站的虚拟电厂(virtual power plant,VPP)优化调度模型,考虑需求响应(demand response,DR)参与调峰市场(peak shaving market,PSM)制定分时电价为系统带来收益,从而进一步降低系统运行成本,并引入短期风功率预测及熵值权重法协助后期调度求解。在多能源互补层面,针对风能特点建立风电与CSP联合运行系统。在低碳化方面,建立P2G-CCUS耦合系统,其中包含两段式电转气、燃气轮机(gas turbine,GT)和碳捕集利用与封存系统的数学模型,提出以运行成本最低、碳排放量最小为目标的优化调度策略。采用MATLAB调用CPLEX进行求解,通过设置不同的场景进行对比,结果表明文中所提的优化调度策略可充分实现碳循环利用,极大限度地减少碳排放,具有显著的经济及社会效益。