文獻(xiàn)上新!PRI-8800助力土壤有機(jī)碳分解對(duì)溫度變化響應(yīng)的研究
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在氣候變暖的背景下,土壤有機(jī)碳分解溫度敏感性(Q10)的研究主要集中在表層土壤,而深層土壤有機(jī)碳分解特征及其控制因子還未得到充分的認(rèn)識(shí),這將會(huì)明顯增加陸地生態(tài)系統(tǒng)土壤碳庫(kù)—?dú)夂蚍答伒膹?qiáng)度和方向預(yù)測(cè)的不確定性。
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圖1.不同海拔和土層間Q10值的分布,Q10-cum,基于128天累積培養(yǎng)呼吸計(jì)算;Q10-q,基于累積消耗碳組分0-0.1%、0.2-0.3%、0.4-0.5%計(jì)算;Q10-k基于模型模擬快庫(kù)、慢庫(kù)、惰庫(kù)計(jì)算。
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表1.海拔和土層對(duì)不同Q10的影響
研究結(jié)果發(fā)現(xiàn)不同海拔和不同土層土壤有機(jī)碳的化學(xué)穩(wěn)定性和物理化學(xué)穩(wěn)定性都存在顯著差異。高海拔地區(qū)(海拔3600米以上的冷杉林和高山草甸)土壤有機(jī)碳的化學(xué)抗性高于低海拔地區(qū)。土壤有機(jī)碳分解的Q10受土壤深度和海拔高度的顯著影響。而深度對(duì)Q10的影響遠(yuǎn)小于海拔梯度對(duì)Q10的影響。高海拔地區(qū)土壤有機(jī)碳礦化的溫度敏感性高于低海拔地區(qū)。
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圖2.隨機(jī)森林模型明確氣候因素、土壤理化性質(zhì)、化學(xué)組分和物理保護(hù)對(duì)Q10-q的影響
土壤有機(jī)碳的化學(xué)性質(zhì)在土壤有機(jī)碳礦化溫度敏感性的變異中起主要解釋作用,其中有機(jī)碳疏水性、累積礦化碳組分和烷基碳/氧烷基碳比率為重要性前三的土壤有機(jī)碳化學(xué)性質(zhì);土壤有機(jī)碳物理保護(hù)作用次之。
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圖3.氣候、土壤理化性質(zhì)、化學(xué)組分和物理保護(hù)對(duì)Q10的影響
UPGRADED!
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可進(jìn)行恒溫或變溫培養(yǎng)設(shè)定;
溫度控制波動(dòng)優(yōu)于±0.05℃;
平均升降溫速率不小于1°C/min;
150ml樣品瓶適配25位樣品盤(pán);
具有CO2預(yù)降低的雙回路設(shè)計(jì);
一體化設(shè)計(jì),內(nèi)置CO2 H2O模塊;
可以外接濃度和同位素分析儀等。
02 PRI-8800 實(shí)驗(yàn)設(shè)計(jì)
03 PRI-8800相關(guān)文獻(xiàn)信息
1.Li, C., Xiao, C.W., Guenet, B., Li, M.X., Xu, L., He, N.P. 2022. Short-term effects of labile organic C addition on soil microbial response to temperature in a temperate steppe. Soil Biology and Biochemistry 167, 108589.
2.Jiang ZX, Bian HF, Xu L, He NP. 2021. Pulse effect of precipitation: spatial patterns and mechanisms of soil carbon emissions. Frontiers in Ecology and Evolution, 9: 673310.
3.Liu Y, Xu L, Zheng S, Chen Z, Cao YQ, Wen XF, He NP. 2021. Temperature sensitivity of soil microbial respiration in soils with lower substrate availability is enhanced more by labile carbon input. Soil Biology and Biochemistry, 154: 108148.
4.Bian HF, Zheng S, Liu Y, Xu L, Chen Z, He NP. 2020. Changes in soil organic matter decomposition rate and its temperature sensitivity along water table gradients in cold-temperate forest swamps. Catena, 194: 104684.
5.Xu M, Wu SS, Jiang ZX, Xu L, Li MX, Bian HF, He NP. 2020. Effect of pulse precipitation on soil CO2 release in different grassland types on the Tibetan Plateau. European Journal of Soil Biology, 101: 103250.
6.Liu Y, He NP, Xu L, Tian J, Gao Y, Zheng S, Wang Q, Wen XF, Xu XL, Yakov K. 2019. A new incubation and measurement approach to estimate the temperature response of soil organic matter decomposition. Soil Biology & Biochemistry, 138, 107596.
7.Liu Y, He NP, Wen XF, Xu L, Sun XM, Yu GR, Liang LY, Schipper LA. 2018. The optimum temperature of soil microbial respiration: Patterns and controls. Soil Biology and Biochemistry, 121: 35-42.
8.Liu Y, Wen XF, Zhang YH, Tian J, Gao Y, Ostle NJ, Niu SL, Chen SP, Sun XM, He NP. Widespread asymmetric response of soil heterotrophic respiration to warming and cooling. Science of Total Environment, 635: 423-431.
9.Wang Q, He NP, Xu L, Zhou XH. 2018. Important interaction of chemicals, microbial biomass and dissolved substrates in the diel hysteresis loop of soil heterotrophic respiration. Plant and Soil, 428: 279-290.
10.Wang Q, He NP, Xu L, Zhou XH. 2018. Microbial properties regulate spatial variation in the differences in heterotrophic respiration and its temperature sensitivity between primary and secondary forests from tropical to cold-temperate zones. Agriculture and Forest Meteorology, 262, 81-88.
11.Li J, He NP, Xu L, Chai H, Liu Y, Wang DL, Wang L, Wei XH, Xue JY, Wen XF, Sun XM. 2017. Asymmetric responses of soil heterotrophic respiration to rising and decreasing temperatures. Soil Biology & Biochemistry, 106: 18-27.
12.Liu Y, He NP, Xu L, Niu SL, Yu GR, Sun XM, Wen XF. 2017. Regional variation in the temperature sensitivity of soil organic matter decomposition in China’s forests and grasslands. Global Change Biology, 23: 3393-3402.
13.Wang Q, He NP*, Liu Y, Li ML, Xu L. 2016. Strong pulse effects of precipitation event on soil microbial respiration in temperate forests. Geoderma, 275: 67-73.
14.Wang Q, He NP, Yu GR, Gao Y, Wen XF, Wang RF, Koerner SE, Yu Q*. 2016. Soil microbial respiration rate and temperature sensitivity along a north-south forest transect in eastern China: Patterns and influencing factors. Journal of Geophysical Research: Biogeosciences, 121: 399-410.
15.He NP, Wang RM, Dai JZ, Gao Y, Wen XF, Yu GR. 2013. Changes in the temperature sensitivity of SOM decomposition with grassland succession: Implications for soil C sequestration. Ecology and Evolution, 3: 5045-5054.
16.何念鵬, 劉遠(yuǎn), 徐麗, 溫學(xué)發(fā), 于貴瑞, 孫曉敏. 2018. 土壤有機(jī)質(zhì)分解溫度敏感性研究:培養(yǎng)與測(cè)定模式. 生態(tài)學(xué)報(bào), 38: 4045-4051.
17.Mao X1, Zheng J1, Yu W, Guo X, Xu K, Zhao R, Xiao L, Wang M, Jiang Y, Zhang S, Luo L, Chang J, Shi Z, Luo Z* 2022. Climate-induced shifts in composition and protection regulate temperature sensitivity of carbon decomposition through soil profile. Soil Biology and Biochemistry 172, 108743.
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