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Screening Carbon‐Efficient Urban Woody Plants in High‐altitude Xining

Seasonal Photosynthetic Dynamics and Canopy Carbon‐Sequestration Potential

Datos Bibliográficos

ID24141018
AutoresHuilin Yang (0000-0003-4483-5109, Qinghai Normal University), Yitong Zhang (0000-0002-5378-1854, Henan Agricultural University), Qiutan Ren (Henan Agricultural University), Xiaoyang Tan (0000-0002-2683-8667, Institute for Global Environmental Strategies), Hengjia Zhang (0000-0002-1030-4644, Henan Agricultural University), Qingyang Wang (0000-0002-9658-1668, Henan Agricultural University), Yanxia Jin (Qinghai Normal University), Qirui Wang (0000-0002-0460-8860, Henan Agricultural University), Jiankang Ling (0009-0004-2247-8424, Qinghai Normal University), Zhijun Liu (0000-0001-5533-3038, Henan Agricultural University), Ang Li (0000-0002-6269-6432, Henan Agricultural University), Yangyang Zhang (0000-0003-4136-8875, Henan Agricultural University), Xiaoqin Liu (0009-0005-4527-7681, Qinghai Normal University), Hoyi Wan (0000-0002-2146-8257, University of Florida), Hui Cao (0000-0001-9715-2104), Cao Hui (0000-0002-9273-8437, Qinghai University), Zhe Chen (0000-0003-3194-2933, Qinghai Normal University), Hanyue Zhu (Henan Agricultural University), Zheng Wang (0000-0003-0758-2202), Shidong Ge (0000-0003-0828-7379, Qinghai Normal University, autor de correspondencia), Xufeng Mao (0000-0002-6414-1000, Qinghai Normal University, autor de correspondencia)
Año2026
Páginas101476
Fecha de publicación2026-08-01
Peer ReviewedSí
Open AccessSí
TipoARTICLE
RevistaTrees Forests and People (JOURNAL)
Identificadores de la revistaISSN: 2666-7193 • E-ISSN: 2666-7193
EditorialElsevier BV (PUBLISHER)
DOI10.1016/j.tfp.2026.101476
OpenAlexW7204733727
IdiomaEN
Referencias citadas41

Urban green spaces are increasingly expected to support municipal carbon mitigation, yet species-level evidence remains scarce for high-altitude cold cities. We quantified seasonal net photosynthetic rate (Pn) and estimated growing-season canopy CO2 assimilation potential for 106 commonly planted urban woody species (58 trees and 48 shrubs) across sixteen urban green-space sites in Xining, China (2,261 m a.s.l.), during the 2025 growing season (May–October). Monthly diurnal Pn measurements were integrated with total leaf area estimates derived from field structural measurements, i-Tree Eco leaf-area parameters and shrub-specific allometric models. Across species, mean Pn generally followed a unimodal seasonal pattern, peaking in July at 9.49 ± 0.21 μmol m−2 s−1, with lower rates in spring and autumn. Estimated growing-season canopy CO2 assimilation potential varied strongly among taxa and life forms. Ulmus pumila reached the highest value among trees (146.48 ± 33.71 CO2 yr−1), followed by Populus alba and Populus cathayana , whereas Hippophae rhamnoides ranked highest among shrubs (0.852 ± 0.152 kg CO2 yr−1), followed by Elaeagnus angustifolia and Ligustrum sinense . Deciduous broad-leaved species generally outperformed evergreen conifers, suggesting that high peak-season assimilation and large leaf area can outweigh longer leaf retention under a short growing season. Clustering grouped trees and shrubs into five performance classes, supporting site-specific planting templates for parks, roads and residential spaces that couple carbon performance with air-quality, thermal-comfort and amenity co-benefits. These results provide a one-growing-season screening baseline for carbon-efficient urban woody plant selection in Xining, pending multi-year monitoring, leaf-area validation and life-cycle carbon accounting.

Canopy · Deciduous · Evergreen · Growing season · Photosynthesis · Ulmus pumila · Vegetation (pathology) · Woody plant · Plant Water Relations and Carbon Dynamics · Remote Sensing in Agriculture · Urban Heat Island Mitigation

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