Module designationSEDC1001 BASIC CHEMISTRY I
Semester(s) in which the module is taught1st Semester
Person responsible for the moduleRatu Fazlia Inda Rahmayani, S.Pd., M.Sc.
LanguageIndonesian, English (for lecture material)
Relation to curriculumMandatory modules for 1st semester students. 
Teaching methodsLecture, small group discussion
Workload (incl. contact hours, self-study hours)3 x 45 hours per semester, comprising:
150 minutes lecture and discussion per week180 minutes structured tasks per week180 minutes learn to be independent per week
Credit points3 SKS = 5.01 ECTS
Required and recommended prerequisites for joining the module
Module objectives/intended learning outcomesThrough discussions and question-and-answer sessions, students are able to analyze and solve problems related to: conversion factors, significant figures in measurements, precision and accuracy; the nature, classification, and states of matter; submicroscopic representations of elements, compounds, and mixtures; types of matter changes and their indicators; intensive and extensive properties of matter; atomic concepts and the development of atomic theory, with an emphasis on Dalton’s atomic theory; the history, usefulness, and function of the periodic system; atomic structure and electron configuration; Lewis structures; an introduction to chemical bonding; bond polarity; and the balancing of chemical equations—accurately and thoroughly.Through discussions and question-and-answer sessions, students are able to analyze and solve problems related to the nomenclature of inorganic compounds; fundamental laws of chemistry and their applications; the concepts of molecular and structural formulas; writing structural formulas; and limiting reagents—accurately and thoroughly.Through discussions and question-and-answer sessions, students are able to analyze and solve problems related to oxidation numbers and their rules (for both inorganic and organic compounds); the development of redox reactions; redox reaction balancing; solutions—their processes and properties; solubility and the factors affecting it, including unsaturated, saturated, and supersaturated conditions; as well as carbon, organic, and inorganic compounds—their properties, reactions, and the unique characteristics of reactions involving carbon and organic compounds—accurately and thoroughly.
ContentThis course is designed to strengthen students’ knowledge and understanding of fundamental chemical concepts, including: conversion factors, significant figures in measurements, precision and accuracy; the nature, classification, and states of matter; submicroscopic representations of elements, compounds, and mixtures; types of matter changes and their indicators; intensive and extensive properties of matter; atomic concepts and the development of atomic theory, with emphasis on Dalton’s atomic theory; the history, functions, and significance of the periodic table; atomic structure and electron configuration; Lewis structures; an introduction to chemical bonding and bond polarity; balancing chemical equations; the nomenclature of inorganic compounds; fundamental laws of chemistry and their applications; the concepts of molecular and structural formulas, structural formula writing, and limiting reagents; oxidation numbers and their rules (for both inorganic and organic compounds); the development and balancing of redox reactions; the nature and properties of solutions; solubility and influencing factors, including unsaturated, saturated, and supersaturated states; as well as carbon, organic, and inorganic compounds—their properties, reactions, and the unique characteristics of reactions involving carbon and organic compounds.
Exams and assessment formatswritten examinations, student presentations, and guided class discussions
Study and examination requirements Quiz: 7.5%Assignment: 35.5%Midterm: 42%Final exam: 15%
Recommended literatureGilbert, T. R., Kirss, R. V., Foster, N., & Bretz, S. L. (2018). Chemistry an Atoms-Focused Approach. In Chemistry an Atoms-Focused Approach. W. W. Norton & Company, Inc.Hein, M., Arena, S., & Willard, C. (2016). Foundation of College Chemistry. John Wiley & SonsHill, J. W., & McCreary, T. W. (2015). Chemistry For Changing Times. PearsonIUPAC. (2014). Compendium of Chemical Terminology: Gold Book. IUPAC. https://doi.org/10.1002/9783527626854.ch7Leigh, G. J., Favre, H. A., & Metanomski, W. V. (1999). Principles of Chemical Nomenclature. A Guide to IUPAC Recommendations Edited by G. J. Leigh. Blackwell Science, Oxford, U.KPetrucci, R. H., Herring, F. G., Madura, J. D., & Bissonnette, C. (2011). General Chemistry Principles and Modern Applications (tenth edit). Pearson.Stuart, M. S., & Amateis, P. G. (2021). Chemistry : the molecular nature of matter and change (ninth edit). McGraw Hill. https://doi.org/10.31399/asm.hb.v02.a0001116
Recommended ArticlesAlcántara, J., de la Fuente, D., Chico, B., Simancas, J., Díaz, I., & Morcillo, M. (2017). Marine atmospheric corrosion of carbon steel: A review. Materials, 10(4). https://doi.org/10.3390/ma10040406Davidowitz, B., Chittleborough, G., & Murray, E. (2010). Student-generated submicro diagrams: A useful tool for teaching and learning chemical equations and stoichiometry. Chemistry Education Research and Practice, 11(3), 154–164. https://doi.org/10.1039/c005464jSchindelholz, E., Risteen, B. E., & Kelly, R. G. (2014). Effect of Relative Humidity on Corrosion of Steel under Sea Salt Aerosol Proxies. Journal of The Electrochemical Society, 161(10), C450–C459. https://doi.org/10.1149/2.0221410jes
Problem-Silving ExercisesMacnow, A. S. (2020). MCAT® General Chemistry Review. Kaplan Publishing.Mascetta, J., & Kernion, M. (2016). SAT Subject Test Chemistry. In Syria Studies (Vol. 7, Issue 1). Barron’s Educational Series, Inc. Moore, J. T., & Langley, R. H. (2017). 5 Steps to a 5 AP Chemistry. McGraw Hill.Franek, R., Cornelius, C., Garrick, M. B., Coppock, S., & Cato, C. (2014). Cracking teh SAT Chemistry Subject Test. Random House LLC
Date of last amendmentAugust 12, 2024