This paper introduces a simple and reliable photometric calibration method to extract Hα line flux from narrowband images. The equivalent width of the Hα line (EWHα) is derived using two- and simplified three-filter methods. Synthetic photometry of CALSPEC stars demonstrates the dependency of EWHα on the V − R color, described by a skewed Gaussian function within −0.1 < V − R < 0.7. Systematic errors of the two- and three-filter methods are analyzed under 0%–10% R-band flux contamination. Although the three-filter method underestimates EWHα by 10%, it exhibits less scatter compared to the two-filter method. The simplified three-filter method was validated with the Landolt SA 107 field and surpasses the two-filter method in terms of precision and accuracy. Additionally, applying our method to V960 Mon yields EWHα consistent with high-resolution spectroscopic results.
Kang Hwan Lee, Wonseok Kang, Sun-Gill Kwon, Kyoung Hee Kim, Mikyung Kim, Sang Chul Kim, Taewoo Kim, Young-Jae Moon, Byeong Gon Park, Soojong Pak, Soonchang Park, Jiwon Park, Changbom Park, Eon Chang Sung, Naeun Shin, Yong Cheol Shin, Jihye Shin, Aran Lyo, Hoseop Yoon, Sang Gak Lee, Sang Hyun Lee, Jeong Ae Lee, Min-Ji Jeong, Yoonho Choi, Gwangson Choe, Jihye Hwang
We report the result of a high-resolution spectroscopic study on seven magnesium (Mg) enhanced stars. The high Mg abundances in these stars imply that they were born in an environment heavily affected by the nucleosynthesis products of massive stars. We measure abundances of 16 elements including Mg and they show various abundance patterns implying their diverse origin. Three of our program stars show a very high Mg to Si ratio ([Mg/Si] ≈ 0.18–0.25), which might be well explained by fall-back supernovae or by supernovae with rapid rotating progenitors having an initial mass higher than about 20 𝑀⊙. Another three of our program stars have high light to heavy s-process element ratios ([Y/Ba] ≈ 0.30–0.44), which are consistent with the theoretical prediction of the nucleosynthesis in rapidly rotating massive stars with an initial mass of about 𝑀 = 40 𝑀⊙. We also report a star having both high Y ([Y/Fe] = 0.2) and Ba ([Ba/Fe] = 0.28) abundance ratios, and it also shows the highest Zn abundance ratio ([Zn/Fe] = 0.27) among our sample, implying the nucleosynthesis by asymmetric supernova explosion induced by very rapid rotation of a massive progenitor having an initial mass between 20 𝑀⊙ ≲ 𝑀 ≲ 40 𝑀⊙. A relative deficiency of odd-number elements, which would be a signature of the pair-instability nucleosynthesis, is not found in our sample.
Gu Lim, Myungshin Im, Gregory S H Paek, Sung-Chul Yoon, Changsu Choi, Sophia Kim, Jinguk Seo, Wonseok Kang, Taewoo Kim, Hyun-Il Sung, Yonggi Kim, Joh-Na Yoon, IMSNG team
Myungshin Im, Yonggi Kim, Chung-Uk Lee, Hee-Won Lee, Soojong Pak, Hyunjin Shim, Hyun-Il Sung, Wonseok Kang, Taewoo Kim, Jeong-Eun Heo, Tobias C. Hinse, Masateru Ishiguro, Gu Lim, Cuc T. K. LY, Gregory S. H. Paek, Jinguk Seo, Joh-na Yoon, Jong-Hak Woo, Hojae Ahn, Hojin Cho, Changsu Choi, Jimin Han, Sungyong Hwang, Tae-Geun Ji, Seong-Kook J. Lee, Sumin Lee, Sunwoo Lee, Changgon Kim, Dohoon Kim, Joonho Kim, Sophia Kim, Mankeun Jeong, Bomi Park, Insu Paek, Dohyeong Kim, Changbom Park
Even in an era where 8-meter class telescopes are common, small telescopes are considered very valuable research facilities since they are available for rapid follow-up or long term monitoring observations. To maximize the usefulness of small telescopes in Korea, we established the SomangNet, a network of 0.4{1.0 m class optical telescopes operated by Korean institutions, in 2020. Here, we give an overview of the project, describing the current participating telescopes, its scientic scope and operation mode, and the prospects for future activities. SomangNet currently includes 10 telescopes that are located in Australia, USA, and Chile as well as in Korea. The operation of many of these telescopes currently relies on operators, and we plan to upgrade them for remote or robotic operation. The latest SomangNet science projects include monitoring and follow-up observational studies of galaxies, supernovae, active galactic nuclei, symbiotic stars, solar system objects, neutrino/gravitational-wave sources, and exoplanets.
Joonho Kim, Myungshin Im, Gregory S H Paek, Chung-Uk Lee, Seung-Lee Kim, Seo-Won Chang, Changsu Choi, Sungyong Hwang, Wonseok Kang, Sophia Kim, Taewoo Kim, Hyung Mok Lee, Gu Lim, Jinguk Seo, Hyun-Il Sung
Gregory SH Paek, MyungShin Im, Joonho Kim, Gu Lim, Mankeun Jeong, Wonseok Kang, Taewoo Kim, Otabek Burkhonov, Davron Mirazaqulov, Shyhrat A Ehgamberdiev, Seo Jinguk, Chung-Uk Lee, Seung-Lee Kim, Hyung-Il Sung
Jong-Hak Woo, Donghoon Son, Elena Gallo, Edmund Hodges-Kluck, Yiseul Jeon, Jaejin Shin, Hyun-Jin Bae, Hojin Cho, Wanjin Cho, Daeun Kang, Wonseok Kang, Marios Karouzos, Minjin Kim, Taewoo Kim, Huynh Anh N. Le, Daeseong Park, Songyoun Park, Suvendu Rakshit, Hyun-il Sung
While the reverberation mapping technique is the best available method for measuring black hole mass in active galactic nuclei (AGNs) beyond the local volume, this method has been mainly applied to relatively low-to-moderate luminosity AGNs at low redshift. We present the strategy of the Seoul National University AGN Monitoring Project, which aims at measuring the time delay of the Hβ line emission with respect to AGN continuum, using a sample of relatively high luminosity AGNs out to redshift z ∼ 0.5. We present simulated cross correlation results based on a number of mock light curves, in order to optimally determine monitoring duration and cadence. We describe our campaign strategy based on the simulation results and the availability of observing facilities. We present the sample selection, and the properties of the selected 100 AGNs, including the optical luminosity, expected time lag, black hole mass, and Eddington ratio.
Myungshin Im, Changsu Choi, Sungyong Hwang, Gu Lim, Joonho Kim, Sophia Kim, Gregory S. H. Paek, Sang-Yun Lee, Sung-Chul Yoon, Hyunjin Jung, Hyun-Il Sung, Yeong-beom Jeon, Shuhrat Ehgamberdiev, Otabek Burhonov, Davron Milzaqulov, Omon Parmonov, Sang Gak Lee, Wonseok Kang, Taewoo Kim, Sun-gill Kwon, Soojong Pak, Tae-Geun Ji, Hye-In Lee, Woojin Park, Hojae Ahn, Seoyeon Byeon, Jimin Han, Coyne Gibson, J. Craig Wheeler, John Kuehne, Chris Johns-Krull, Jennifer Marshall, Minhee Hyun, Seong-Kook J. Lee, Yongjung Kim, Yongmin Yoon, Insu Paek, Suhyun Shin, Yoon Chan Taak, Juhyung Kang, Seoyeon Choi, Mankeun Jeong, Moo-Keon Jung, Hwara Kim, Jisu Kim, Dayae Lee, Bomi Park, Keunwoo Park, Seong A O
Intensive Monitoring Survey of Nearby Galaxies (IMSNG) is a high cadence observation program monitoring nearby galaxies with high probabilities of hosting supernovae (SNe). IMSNG aims to constrain the SN explosion mechanism by inferring sizes of SN progenitor systems through the detection of the shock-heated emission that lasts less than a few days after the SN explosion. To catch the signal, IMSNG utilizes a network of 0.5-m to 1-m class telescopes around the world and monitors the images of 60 nearby galaxies at distances D < 50 Mpc to a cadence as short as a few hours. The target galaxies are bright in near-ultraviolet (NUV) with MNUV < - 18.4 AB mag and have high probabilities of hosting SNe (0.06 SN yr-1 per galaxy). With this strategy, we expect to detect the early light curves of 3.4 SNe per year to a depth of R 19:5 mag, enabling us to detect the shock-heated emission from a progenitor star with a radius as small as 0.1 R. The accumulated data will be also useful for studying faint features around the target galaxies and other science projects. So far, 18 SNe have occurred in our target fields (16 in IMSNG galaxies) over 5 years, confirming our SN rate estimate of 0.06 SN yr-1 per galaxy.
Myungshin Im, Changsu Choi, Gu Lim, Sophia Kim, Seunghak Gregory Paek, Joonho Kim, Sungyong Hwang, Suhyung Shin, Sangyun Lee, Sung A O, Sung Chul Yoon, Hyun-Il Sung, Yeong-Beaom Jeon, Sang Gak Lee, Wonseok Kang, Tae-Woo Kim, Sun-gil Kwon, Soojong Pak, Shuhrat Eghamberdiev, IMSNG Team