¹Ù·Î°¡±â ¸Þ´º

¹Ù·Î°¡±â ¸Þ´º º»¹®³»¿ë ¹Ù·Î°¡±â ¸ÞÀθ޴º ¹Ù·Î°¡±â

ÁÖ¿ä¾È³»

HOME »çÀÌÆ®¸Ê

FONT SIZE

ÆùƮũ±â Å°¿ò 100% 110% 120% 130% 140% ÆùƮũ±â ÁÙÀÓ
¸Þ´ºº¸±â
Á¦¸ñ
2020.03.25 ³í¹® ÃÊ·Ï
ÀÛ¼ºÀÏ
2020-03-25
Á¶È¸¼ö
171


Brewer, Eli, et al. "PM2. 5 and ultrafine particulate matter emissions from natural gas-fired turbine for power generation." Atmospheric environment 131 (2016): 141-149.


Yamori, Wataru, Kouki Hikosaka, and Danielle A. Way. "Temperature response of photosynthesis in C 3, C 4, and CAM plants: temperature acclimation and temperature adaptation." 
Photosynthesis research 119.1-2 (2014): 101-117.


Dusenge, Mirindi Eric, André Galvao Duarte, and Danielle A. Way. "Plant carbon metabolism and climate change: elevated CO 2 and temperature impacts on photosynthesis, photorespiration and respiration." 
New Phytologist 221.1 (2019): 32-49.
´ÙÀ½±Û
2020.03.26 ³í¹® ÃÊ·Ï
/ ±è±ÙÈ¿
Dzierżanowski, Kajetan, et al. "Deposition of particulate matter of different size fractions on leaf surfaces and in waxes of urban forest species."International journal of phytoremediation13.10 (2011): 1037-1046. Leonard, Ryan J., Clare McArthur, and Dieter F. Hochuli. "Par..
ÀÌÀü±Û
3¿ù 27ÀÏ ·¦¹ÌÆà ¹ßÇ¥ ³í¹®ÀÔ´Ï´Ù.
/ ±è¼ö°æ
¾È³çÇϼ¼¿ä. 3¿ù 27ÀÏ ·¦¹ÌÆà ¹ßÇ¥³í¹®ÀÔ´Ï´Ù. ³í¹® Á¦¸ñÀºDetecting temporal changes in the temperature sensitivity of spring phenology with global warming: Application of machine learning in phenological mode ÀÔ´Ï´Ù.