[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"item-3738":3,"related-3738":38},{"id":4,"title":5,"url":6,"summary":7,"summary_zh":8,"content":9,"source_name":10,"source_url":8,"published_at":11,"category":12,"cover_url":8,"hotness":13,"is_selected":14,"score":15,"score_detail":16,"sources":24,"tags":26,"search_phrases":32,"slug":35,"view_count":36,"doi":8,"paper":8,"created_at":37},3738,"河南农科院举办土壤质量-粮食产量协同提升玉米观摩会","https:\u002F\u002Fwww.hnjjbs.com\u002Farticle\u002F2026-09\u002F179056750272011.html","9月22日至23日农业农村部作物栽培现代农业科技试验示范基地（新乡平原示范区）组织开展土壤质量-粮食产量协同提升技术集成模式应用效果（玉米季）现场观摩会。河南省农科院植物营养与资源环境研究所黄绍敏研究员等专家授课并现场测产。",null,"9月22日-23日，农业农村部作物栽培现代农业科技试验示范基地(新乡平原示范区)，先后在河南现代农业研究开发基地、获嘉县位庄乡大位庄村，组织开展&ldquo;土壤质量-粮食产量协同提升技术集成模式应用效果(玉米季)&rdquo;现场观摩会。河南省农科院植物营养与资源环境研究所黄绍敏研究员、获嘉县农业农村局王庆安推广研究员、新乡市种业发展中心武志斌正高级农艺师出席活动，平原示范区种植大户、获嘉县各类新型农业经营主体代表共计100余人参会。\n\n观摩会前，黄绍敏、王庆安、武志斌三位专家分别围绕耕层深度改良、秸秆还田培肥地力、测土配方与精准水肥调控、绿色田间管理、科学合理密植等关键内容开展技术授课。培训结束后，与会人员走进示范展示田开展实地观摩，专家组开展玉米现场测产，同时向参会代表发放技术指导手册。黄绍敏表示，土壤质量\n\n粮食产量协同提升技术坚持用地与养地相结合，通过改良耕层、培肥地力，提升肥料利用效率，增强玉米抗逆能力，充分挖掘粮食增产潜力，实现耕地保育与粮食产能同步提高。\n\n此次观摩会既是示范样板效应的实践落地，也是对基地试验示范工作成效的集中检验。一是紧扣国家粮食安全战略，服务新一轮千亿斤粮食产能提升行动。立足区域生产实际，深挖粮食增产潜能，推动粮食单产提升相关举措落地见效，为稳定当地粮食生产、筑牢粮食安全根基提供科技支撑。二是紧盯一线生产需求，回应农户现实生产难题。基地坚持面向大田生产，聚焦种植主体实际诉求，以田间现场观摩直观展示优良品种及配套栽培技术，真正做到让农户看得见、学得会、用得上。三是突出示范引领带动，高效完成基地技术推广任务。依托观摩平台，充分发挥科研示范基地窗口样板作用，集中展示新品种、新技术集成示范成果，以点带面推动成熟技术模式复制扩散，扩大技术辐射覆盖面。","河南经济报","2026-09-28T03:49:00Z","报道",10,false,59,{"impact":17,"substance":18,"depth":19,"authority":20,"freshness":21,"relevant":22,"comment":23},16,14,12,9,8,1,"省级科研机构主办的玉米季技术集成观摩会，有实地测产与专家授课，属细分领域实质进展，但层级与增量有限，可入精选备选。",[25],{"name":10,"url":6},[27,28,29,30,31],"粮食安全","玉米","秸秆还田","土壤改良","科学施肥",[33,34],"河南农科院 玉米 观摩会","土壤质量 粮食产量 协同提升","河南农科院玉米观摩会-3738",0,"2026-09-29T00:08:24.697115Z",{"total":39,"page":22,"page_size":39,"items":40},6,[41,92,136,161,184,206],{"id":42,"title":43,"url":44,"summary":45,"summary_zh":46,"content":8,"source_name":47,"source_url":44,"published_at":48,"category":49,"cover_url":8,"hotness":13,"is_selected":14,"score":50,"score_detail":51,"sources":54,"tags":56,"search_phrases":60,"slug":63,"view_count":22,"doi":64,"paper":65,"created_at":91},2655,"Response of Wheat Crop to The Application of Different Micronutrients and Their Influence on Growth and Development","https:\u002F\u002Fdoi.org\u002F10.71317\u002Fkjard.2.9.2026.605","Micronutrients are required in small quantities but play essential roles in wheat growth, physiological processes, yield formation, and grain nutritional quality. Deficiencies of zinc (Zn), iron (Fe), manganese (Mn), copper (Cu), and boron (B) can restrict plant development and reduce productivity, particularly in soils with limited nutrient availability. This study summarizes the roles of major micronutrients in wheat growth and development, with emphasis on their effects on germination, root development, tillering, biomass production, photosynthesis, nutrient uptake, enzyme activity, yield components, and grain quality. The study also evaluates major approaches for micronutrient management, including soil application, seed treatment, foliar application, and integrated fertilization. Particular attention is given to the influence of soil properties, environmental conditions, wheat genotype, fertilizer dose, application timing, and application method on micronutrient availability and utilization efficiency. Recent evidence indicates that balanced micronutrient management can improve wheat physiological performance, yield components, grain yield, and nutritional value, while agronomic biofortification offers an important strategy for increasing grain Zn and Fe concentrations. However, the effectiveness of micronutrient application varies considerably with soil conditions, climatic stresses, genotype, and management practices. Therefore, site-specific nutrient management, soil testing, genotype selection, and stage-specific application are essential for improving micronutrient-use efficiency. Integrating micronutrient management with wheat breeding and precision agriculture can contribute to sustainable productivity and improved grain nutritional quality. Future research should focus on genotype-specific micronutrient requirements, nutrient interactions, precision application technologies, and climate-resilient strategies for efficient wheat production and enhanced food and nutritional security.","微量营养元素虽然需求量小，但在小麦生长、生理过程、产量形成和籽粒营养品质中发挥着重要作用。锌（Zn）、铁（Fe）、锰（Mn）、铜（Cu）和硼（B）的缺乏会限制作物发育并降低生产力，尤其是在养分有效性有限的土壤中。本研究综述了主要微量营养元素在小麦生长发育中的作用，重点阐述了其对萌发、根系发育、分蘖、生物量积累、光合作用、养分吸收、酶活性、产量构成和籽粒品质的影响。研究还评估了微量营养元素管理的主要途径，包括土壤施用、种子处理、叶面喷施和综合施肥。特别关注了土壤性质、环境条件、小麦基因型、肥料用量、施用时期和施用方法对微量营养元素有效性和利用效率的影响。近期证据表明，平衡的微量营养元素管理可以改善小麦生理性能、产量构成、籽粒产量和营养价值，而农艺生物强化是提高籽粒锌和铁浓度的重要策略。然而，微量营养元素施用的效果因土壤条件、气候胁迫、基因型和管理措施的不同而有很大差异。因此，针对特定地点的养分管理、土壤测试、基因型选择和分期施用对于提高微量营养元素利用效率至关重要。将微量营养元素管理与小麦育种和精准农业相结合，有助于实现可持续生产力并改善籽粒营养品质。未来研究应聚焦于基因型特异性微量营养元素需求、养分互作、精准施用技术以及气候韧性策略，以实现高效小麦生产并增强粮食和营养安全。","Kashmir Journal of Academic Research and Development","2026-09-14T00:00:00Z","论文",68,{"impact":18,"substance":52,"depth":17,"authority":19,"freshness":21,"relevant":22,"comment":53},18,"综述性论文，系统梳理微量元素对小麦生长与品质的作用及管理策略，对科学施肥与营养强化有参考价值，但非原创试验数据，影响力偏细分领域。",[55],{"name":47,"url":44},[27,57,58,59,31],"小麦","生物强化","微量元素",[61,62],"微量元素 生物强化 科学施肥 粮食安全","微量元素 生物强化","微量元素生物强化科学施肥粮食安全-2655","10.71317\u002Fkjard.2.9.2026.605",{"doi":64,"openalex_id":66,"authors":67,"venue":47,"cited_by_count":36,"oa_url":82,"card":83,"direction":89,"ingested_from":90},"W7213313809",[68,70,72,74,76,78,80],{"name":69,"orcid":8},"Muhammad Adnan Rafique",{"name":71,"orcid":8},"Aftab Ahmad Sheikh",{"name":73,"orcid":8},"Syed Asghar Hussain Shah",{"name":75,"orcid":8},"Saima Nazar",{"name":77,"orcid":8},"Asia Shaheen",{"name":79,"orcid":8},"Muhammad Imran",{"name":81,"orcid":8},"Hafiz Abu Bakar Amin","https:\u002F\u002Frjsaonline.org\u002Findex.php\u002FKJARD\u002Farticle\u002Fdownload\u002F605\u002F852",{"tldr":84,"method":85,"finding":86,"direction":87,"opportunity":88},"综述小麦对锌铁锰铜硼等微量元素的响应及其对生长、产量和品质的影响。","文献综述，分析土壤施用、种子处理、叶面喷施及综合施肥等管理方式。","平衡微量元素管理可提升小麦生理、产量和营养品质，农艺强化可增加籽粒锌铁。","农业绿色发展与碳","可结合基因型与精准农业，研究特定基因型微量元素需求及气候适应型精准施用技术。","农业遥感与作物表型","openalex","2026-09-16T23:30:21.993931Z",{"id":93,"title":94,"url":95,"summary":96,"summary_zh":8,"content":8,"source_name":97,"source_url":95,"published_at":98,"category":49,"cover_url":8,"hotness":13,"is_selected":14,"score":99,"score_detail":100,"sources":103,"tags":105,"search_phrases":109,"slug":112,"view_count":36,"doi":113,"paper":114,"created_at":135},2290,"Optimizing biochar application strategies to improve soil properties and crop productivity in salt-affected croplands: Evidence from a global meta-analysis and machine learning approach","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.agsy.2026.104975","Optimizing biochar application strategies to improve soil properties and crop productivity in salt-affected croplands: Evidence from a global meta-analysis and machine learning approach。Agricultural Systems","Agricultural Systems","2026-09-13T00:00:00Z",82,{"impact":52,"substance":101,"depth":52,"authority":18,"freshness":13,"relevant":22,"comment":102},22,"全球荟萃分析与机器学习结合优化盐碱地生物炭施用策略，方法新颖、结论可靠，对盐碱地改良与产能提升有实质参考价值。",[104],{"name":97,"url":95},[27,106,107,30,108],"机器学习","生物炭","盐碱地治理",[110,111],"盐碱地治理 土壤改良 机器学习 粮食安全","盐碱地治理 土壤改良","盐碱地治理土壤改良机器学习粮食安全-2290","10.1016\u002Fj.agsy.2026.104975",{"doi":113,"openalex_id":115,"authors":116,"venue":97,"cited_by_count":36,"oa_url":95,"card":8,"direction":8,"ingested_from":90},"W7212358957",[117,119,121,123,125,127,130,133],{"name":118,"orcid":8},"Haoliang Deng",{"name":120,"orcid":8},"Xiaofan Pan",{"name":122,"orcid":8},"Guang Li",{"name":124,"orcid":8},"Bin Mu",{"name":126,"orcid":8},"Rang Xiao",{"name":128,"orcid":129},"Zheyuan Xiao","https:\u002F\u002Forcid.org\u002F0000-0003-0776-4508",{"name":131,"orcid":132},"Wei Pan","https:\u002F\u002Forcid.org\u002F0000-0003-4518-2082",{"name":134,"orcid":8},"Qinli Wang","2026-09-13T23:30:05.101959Z",{"id":137,"title":138,"url":139,"summary":140,"summary_zh":8,"content":141,"source_name":142,"source_url":8,"published_at":143,"category":12,"cover_url":8,"hotness":13,"is_selected":14,"score":144,"score_detail":145,"sources":150,"tags":152,"search_phrases":156,"slug":159,"view_count":36,"doi":8,"paper":8,"created_at":160},2009,"玉米穗腐病绿色防控见实效","https:\u002F\u002Fcaas.cn\u002Fxwzx\u002Fmtxw\u002F084d018b124b46e69fb55501b8591a17.htm","农业农村部环境保护科研监测所联合相关单位在河北鸡泽构建“土壤健康修复—病原源头阻控—生态协同调控”一体化技术体系，并配套多毒素快速检测工具。连续三年多点示范显示，在减肥减药条件下，玉米穗腐病防控、产量和质量实现协同提升。","金秋九月，燕赵大地玉米丰收在望。9月6日，第二届农业环境生物污染控制现场观摩暨玉米穗腐病绿色防控技术交流活动在河北省邯郸市鸡泽县举行。与会代表实地观摩了一体化绿色防控技术的优化升级实效，共商大规模推广良策。这套以土壤健康调控为核心的玉米穗腐病绿色防控“鸡泽模式”，为破解真菌毒素污染难题、保障国家粮食安全提供越来越成熟的系统路径。\n\n玉米作为我国主粮之一，其安全生产直接关系粮食安全与民生福祉。然而，以镰刀菌为代表的土壤习居病原真菌导致的玉米穗腐病，一直是制约产业发展的“拦路虎”。更令人担忧的是，病原菌还会导致玉米被黄曲霉毒素、呕吐毒素、伏马毒素等污染，不仅造成巨大的产量损失，更对人畜健康构成严重威胁。针对产业现实问题，农业农村部[环境保护科研监测所](http:\u002F\u002Faepi.caas.cn\u002F)联合中国农业科学院相关研究所等单位，连续多年开展技术攻关，不断对玉米穗腐病绿色防控技术进行迭代与优化。\n\n在鸡泽县农业农村部[环境保护科研监测所](http:\u002F\u002Faepi.caas.cn\u002F)专家站试验基地，应用了升级版绿色防控技术的玉米植株健壮，穗大粒饱，与对照地块形成鲜明对比。农业农村部[环境保护科研监测所](http:\u002F\u002Faepi.caas.cn\u002F)研究员姚彦坡介绍，这套不断完善的一体化绿色防控技术体系，深度整合了“土壤健康修复—病原源头阻控—生态协同调控”三大核心模块。在播种期，通过多功能微生物菌剂与种衣剂配合，实现催芽壮苗与根部防病；拔节期精准喷施控旺剂与杀菌剂，降低倒伏风险；大喇叭口期与授粉灌浆期，则结合水肥一体化设施与农业无人机，精准施用多功能菌剂与化学药剂，全方位筑牢玉米“健康防线”。\n\n与此同时，项目组在快速检测技术上也迈出新步伐，开发的多毒素混合污染检测试纸条及便携智能化检测仪，实现了田间高灵敏同步检测，为及早干预提供了“科技慧眼”。\n\n经过连续三年的全国多点布设，技术成效尤为显著。面对今年高温多雨等极端天气挑战，专家站示范基地及周边玉米的抗逆防病效果依然突出。实测数据显示，今年示范区玉米穗腐病防控效果突出，玉米质量安全有显著提升。更值得一提的是，在实现化肥农药减量的情况下，示范区玉米实现产量和质量双提升，真正将“控病、降毒、提质、增产”落到实处。\n\n此次活动由农业农村部[环境保护科研监测所](http:\u002F\u002Faepi.caas.cn\u002F)与鸡泽县人民政府联合主办。会议期间举行了新一轮的科企合作洽谈和交流活动，有3项绿色防控科技成果将率先在鸡泽县落地转化。鸡泽县人民政府县长刘伯表示，近年来鸡泽县深化与高校院所合作，农业科技底座不断夯实。\n\n农业农村部[环境保护科研监测所](http:\u002F\u002Faepi.caas.cn\u002F)所长熊明民表示，该技术在鸡泽县落地是科研成果转化的成功典范，团队将持续强化核心技术攻关，加快在全国玉米主产区的推广步伐。\n\n中国农业科学院成果转化局局长彭文君强调，应对玉米生物污染不仅需要技术突破，更需要机制创新。未来必须坚持多学科协同与政企研联合攻关，加速将当前的“试验田模式”转化为全国适用的“系统解决方案”。\n\n据介绍，未来三年，科研团队将在河北、河南、山东、山西、黑龙江、吉林、辽宁、内蒙古等玉米主产区进一步扩大技术应用，为端牢“中国饭碗”注入强劲的科技动能。","中国农业科学院 \u002F 农民日报 2026-09-06","2026-09-06T00:00:00Z",79,{"impact":146,"substance":147,"depth":17,"authority":18,"freshness":148,"relevant":22,"comment":149},24,20,5,"报道玉米穗腐病绿色防控技术集成与推广成效，具全国性影响，信息详实，信源权威，但时效性稍弱。",[151],{"name":142,"url":139},[27,153,28,154,155],"绿色防控","土壤健康","真菌毒素",[157,158],"土壤健康 真菌毒素 粮食安全 绿色防控","土壤健康 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С]\n\n91920գԺӽˮоڳɳش֯չӽˮֳʾĦᡣũҵѧ¸ԺʿйũҵѧԺԺʿйˮоԺʿʵǮǰԺʿʵҸγ·ũҵѧίǳ¹ԡйũҵѧԺ־оԱרֳΪӽˮָԺίǰԺʿԺίǡԺӦ룬ũҵѧУӽˮоİԺίίԱԺͬ졣\n\nλԺʿרҽ˵ӽˮоչˮܲŶӳӽˮؼɹܲϵһ㷨Ԥģͣ׼ѡһ߲ʡǿӽˮϣЧʡŶӳӽˮʾֲģ2絾9е2Ʒ֣ȫ渲絾еһ˫С167ڹʾĶ1041.19","湖南省农业科学院","2026-09-20T12:00:00Z",74,{"impact":101,"substance":52,"depth":18,"authority":18,"freshness":39,"relevant":22,"comment":194},"院士团队考察第三代杂交水稻示范，含亩产1041.19公斤实测数据，具行业参考价值，但时效略滞后。",[196],{"name":190,"url":187},[176,27,198,199,200],"杂交水稻","水稻新品种","院士团队",[202,203],"第三代杂交水稻 新组合 示范","湖南农科院 杂交水稻 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“五良” 技术模式推广应用，以高标准生产保障粮食稳产增产，以科技创新赋能现代农业建设，全力打造更高水平的粮食生产基地，为陕西大面积规模化粮食单产持续提升、筑牢全省粮食安全屏障贡献力量。","陕西省国资委","2026-09-24T00:00:00Z",72,{"impact":101,"substance":147,"depth":216,"authority":13,"freshness":148,"relevant":22,"comment":217},15,"全国典型案例入选且有权威测产数据支撑，属省级农垦单产提升的实质进展，但时效稍旧、层级偏区域。",[219],{"name":212,"url":209},[27,221,222,223,224],"单产提升","冬小麦","农垦","五良协同",[226,227],"华阴农场 冬小麦 单产提升","新麦9369 吨半田","华阴农场冬小麦单产提升-3707","2026-09-29T00:08:20.039705Z"]