쉐도잉 연습: The Periodic Table: Crash Course Chemistry #4 - 영상으로 영어 말하기 배우기

레슨 만드는 중...
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Hello, I'm Hank Green; welcome to Crash Course Chemistry.
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Today, we're talking about the most important table ever.
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Not the table where they signed the Declaration of Independence, nor any table of contents, nor this table right here, nor the stone table of Aslan, NAY!
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It is the periodic table of elements, a concise, information-dense catalog of all of the different sorts of atoms in the universe.
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Today I want to talk a little bit about the creation of this table, which is, to be clear, one of the crowning achievements of human thought.
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To start out, though, let's close our eyes and pretend.
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Imagine you're in Siberia. And you're a thirteen-year-old boy.
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And your father, who was a professor but had gone blind, leaving your family of more than ten brothers and sisters destitute, has just died. I know, downer.
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Your mom, to support the family, has re-opened an abandoned glassmaking factory in the small town where you live, largely because she wants to make enough money to send you to school someday.
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A year passes - the factory burns down.
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But your mom, she sees your potential; she knows that you have a keen scientific mind and will not see that squandered.
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So, with your siblings out of the house and on their own, she packs up your belongings, straps them to a horse, and with you in tow, rides 1200 miles through the Ural Mountains on horseback to a university in Moscow.
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There, on your behalf, she pleads earnestly and effectively, and they reject you.
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So together, you ride another 400 miles to St. Petersburg, to the school where your father had graduated as a scientist, and as luck, or extreme, insane, undeniably Russian persistence, would have it, they accept you, and your saddle-worn butt, as a pupil. Your mother, having completed her mission, promptly dies.
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If you're doing your imagining as I told you, you might feel a tremendous debt to your mother, and a very deep desire to ensure that you achieve something on par with the sacrifices she made for you.
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And maybe that's one reason why Dmitri Ivanovich Mendeleev became the crown jewel of Russian science, and a theorist who revolutionized how we see the world.
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Mendeleev spent a great deal of time in laboratories as a student, studying the burgeoning new field of chemistry.
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He worked with all the elements that you could work with at the time, and his knowledge gave him unique insights into their properties.
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Those insights would come in handy.
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Let's all imagine we're Mendeleev again - I like doing that - and that we know a bunch of stuff about chemistry - which, you know, we don't, yet - but we're imagining.
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So it's the 1860s, and about 60 elements are known to mankind, and their atomic weights are mostly known as well.
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So the simplest thing was just to sort them in order of their atomic weights.
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But interestingly, you, because you're a cleverpants, realized that the most significant relationships seem to have nothing to do with the atomic weight.
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Lithium, sodium, potassium, and rubidium were all extremely prone to reacting with chlorine, fluorine, iodine, and bromine; beryllium, magnesium, calcium, and strontium were all similar, but less reactive.
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But with a quick inspection, you, and to be fair, a number of other chemists, realize that there was a relationship between atomic weights, but it's periodic.
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At the beginning of the list of elements, characteristics repeat every seven elements.
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On the side here, we now know that it's every eight elements, but in the 1860s, elements were studies based on their reactivity, so the non-reactive noble gases had not yet been discovered, so the period occurred every As the mass of the elements increases, the repetition starts to get a little less periodic, although it's certainly still there; it just isn't perfect.
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Some of your colleagues, they're saying: "Well, such is life." It was perfect repetition early on, but later in the list it gets a little fuzzier.
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But not you; you become obsessed. Obsessed with the perfection of the periodicity.
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You write out the names and weights and properties of elements on cards; you lay them across your desk, shuffle them, tear them to pieces in frustration, until one day, you realize: that you're simply missing cards.
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The numbers aren't working, not because there's something wrong with your ideas, but because some elements simply haven't been discovered yet.
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Armed with this insight, you insert gaps into the table, and things suddenly fall perfectly into place.
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Seven-element periods for the first two rows, with hydrogen in its own category, eighteen-element periods for the next two rows.
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You're so certain that you predict the properties of these missing elements.
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And when a French scientist comes along and says that he has, in fact, discovered one of them, you argue with him, saying that you discovered it first in your mind.
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And when you see his data, and it doesn't match yours, you publish a paper saying his data for the new element he discovered is wrong.
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That's how certain you are of yourself of this beautiful new theoretical framework you've created.
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And you know what the really crazy thing is? You're right! That French guy's data was wrong!
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You, never having examined the element he discovered, knew more about it than he did, because you are Mendeleev, Master of the Elements.
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Okay, we're done imagining for the episode; that was fun though.
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Different groups Mendeleev had identified are a lot of the same groups that we study today.
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Starting at the left, we have the soft, shiny, extremely reactive alkali metals, so reactive, in fact, that they have to be stored in inert gases or oil, to prevent them from reacting with the atmosphere.
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Alkali metals want nothing more than to dump off an electron and form a positive ion, or cation.
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And they're always jonesing to hook up with a hottie from the other side of the table.
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So of course, seeing as they're so reactive, you don't find hunks of them lying around in nature; instead, chemists must extract them from compounds containing them.
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Next, you have the alkaline earth metals - reactive metals, but not as reactive as the alkali metals, forming cations with two positive charges instead of just one.
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Calcium, shown here, undergoes a very similar reaction to sodium with water, just a little more slowly, producing a little less heat.
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The middle body area of the table is made up of a nice, solid rectangle of transition metals, these are the metals you think of as metal, with iron, and nickel, and gold, and platinum.
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The majority of elements are metals - they're fairly unreactive, great conductors of heat, but more importantly for us, good conductors of electricity.
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They're malleable, and can be bent and formed and hammered into sheets, and they're extremely important in chemistry but overall surprisingly similar to each other.
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On the far right, just over from the noble gases, the halogens make up a set of extremely reactive gases that form negative ions, or anions, with one negative charge, and love to react with the alkali and alkaline earth metals.
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The rectangle between the halogens and the transition metals contain a peculiar scatter shot of metals, metalloids, gases, and nonmetals; these guys don't end up as ions unless you take extreme action and start shooting other ions at them, so generally a bit boring over here, though lots of interesting covalent organic chemistry .
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Down below, in their own little island, are the lanthanides and actinides, metals that were largely undiscovered in Mendeleev's day because they're so similar that it's next to impossible to separate them from each other.
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And finally, on the far, far right, also undiscovered when Mendeleev built his chart, the completely unreactive noble gases.
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Like a lot of other obsessive scientists, Mendeleev never thought he was done with his table, so he held it back for quite a while, only publishing it as part of a new chemistry textbook he was working on as a way to make some quick cash that he needed.
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And, as with many other scientific revelations, there were a number of other people hot on this discovery's trail.
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As many as six people published on the periodicity of elements at roughly the same time as Mendeleev, but a few things set him apart.
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1. He was obsessive.
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He knew the data better than anyone else, and had spent a ton of time working on a theory that many people thought was just an interesting little quirk.
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And 2. he realized in a way no one else did that the idea of periodicity had far-reaching consequences.
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It seems as if he had a deep belief in the cosmic importance of what he was doing, almost of religious fascination.
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Mendeleev believed in God but also he believed that organized religions were false paths to the unknowable nature of God.
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I like to believe that he thought he saw some divine pattern in his tables, and Mendeleev felt as if he was coming to know God in a way that no other man had.
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To be clear, this is pure conjecture.
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And as we now know, the periodicity of elements is a physical phenomenon.
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It's a function of electrons, which are in some ways pretty dang peculiar, but certainly not at all mystical.
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But we'll get to that peculiar physical reality in the next episode.
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The periodic table that we know and love - I love it anyway - if a representation of reality; a way of understanding and sorting the universe as it exists.
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But that form of the table is not by any means set in stone; indeed, a contemporary of Mendeleev envisioned the table set onto a screw, or cylinder, with the elements wrapping around from one side to another.
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While Mendeleev's table looks more like a map up on a wall, de Chancourtois, a geologist, envisioned more of a globe.
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Unfortunately for de Chancourtois, no publisher could figure out how to print his cylindrical 3D table, and so he published his paper without a graphical representation of his Periodic Cylinder of the Elements, and it was largely ignored.
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I guess they didn't have paper craft back then.
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I am a huge fan of this cut-and-tape model of the periodic table; you can make your own - there's a link in the description - and there are also a ton of other designs for periodic tables that have various advantages over the one that we're all familiar with.
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Our periodic table, as it stands, it really a little bit unhappy with itself, frankly; the lanthanides and actinides really should be part of the table, but we separate them out, because it's hard to fit that on a piece of paper; really, this is what it should look like.
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And really, it would be best if it wrapped around into a circle, so that fluorine, and neon, and sodium were all next to each other, instead of being on opposite sides of the map, because they're just one proton away!
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Mendeleev's contribution, nonetheless, is more powerful than at first it seemed.
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He ended up forming a guide to help future chemists understand things that wouldn't be discovered for 25, 50, even 100 years.
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Indeed, after Mendeleev's theories were published and accepted, the overwhelming cry form the scientific community was "Why? Why? Why?" And although Mendeleev was not himself concerned with this stuff, he actually denied the existence of atoms, or indeed anything he couldn't see with his own eyes.
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It turned out that the answer to the first "Why", was the electron.
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That sneaky little electron; Mendeleev, if he'd been around to see their discovery, he would have hated them.
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But you, you will have a healthy respect for them, after you learn all about them on the next episode of Crash Course Chemistry.
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Thank you for watching this episode of Crash Course Chemistry. If you were paying attention, you now know: The terrible, beautiful, and wonderful story of Dmitri Mendeleev; How he organized the elements into the periodic table; Some of the basics of the relationships in that table; Why Mendeleev stood out from his colleagues; and how the table as we know it today could stand some improvement.
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This episode of Crash Course Chemistry was written by myself, filmed and directed by Caitlin Hofmeister, and edited by Nick Jenkins.
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The script was edited by Blake de Pastino and Dr. Heiko Langner, our sound designed is Michael Aranda, and Thought Café is our graphics team.
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If you have any questions, please ask them in the comments below.
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Thank you for learning with us, here in Crash Course Chemistry.

맥락 및 배경

이번 영상에서는 헨크 그린이 주기율표의 기원과 그것이 인류 지식의 걸작 중 하나로 여겨지는 이유를 설명합니다. 주기율표는 우주에 존재하는 모든 원소를 정리한 정보 밀도가 높은 카탈로그로, 화학의 중요한 기본 요소를 다룹니다. 이 과정에서 드미트리 멘델레예프의 이야기를 통해 그가 어떻게 이론적으로 원소를 분류했는지를 보여줍니다. 멘델레예프는 자신의 과학적 통찰력을 바탕으로 원소의 주기성을 발견하고, 이를 통해 현대의 주기율표를 완성하게 됩니다.

일상 커뮤니케이션을 위한 5가지 주요 문구

  • “이 원소는 반응성이 높다.” - 원소의 특성을 설명할 때 유용한 문구입니다.
  • “원자량이 증가할수록 주기가 반복된다.” - 주기율표의 주기성을 강조할 때 적절합니다.
  • “화학은 과학의 기초 중 하나이다.” - 화학의 중요성을 설명할 때 사용할 수 있습니다.
  • “가장 중요한 원소들을 이해하는 것이 필수적이다.” - 다양한 원소의 중요성을 인식시키는 데 유용합니다.
  • “이 자료는 새로운 발견에 영향을 미쳤다.” - 화학 연구의 발전을 설명할 때 사용합니다.

단계별 쉐도잉 가이드

이 비디오의 내용을 효과적으로 연습하려면 다음 단계를 따라 해 보세요:

  1. 비디오 시청: 처음에는 전체적으로 비디오를 시청하며 내용 파악에 집중하세요. 주제의 큰 그림을 이해하는 것이 중요합니다.
  2. 쉐도잉 시작: 한 문장씩 반복해서 따라 말합니다. shadow speech 기법을 사용하여 발음을 맞춰 보세요. 처음에는 느리게 따라 하고, 점차 속도를 올려가면서 연습합니다.
  3. 키 포인트 정리: 비디오에서 나온 주요 개념과 문구를 정리해 보세요. '유튜브 영어 공부'의 일환으로 메모를 하며 복습하는 것이 유익합니다.
  4. 반복 연습: 각 문장을 여러 번 반복해서 연습한 후, 이해가 되는지 확인합니다. 이렇게 하면 영어 발음 교정에도 도움이 됩니다.
  5. 자기 검토: 녹음하여 자신의 발음을 들어보고, 필요한 부분을 개선합니다. shadowspeaks 기술을 사용하여 더 나은 발음을 유지하세요.

이 단계를 통해 주기율표와 화학에 대한 이해를 높이고, shadowing site를 통해 효과적으로 영어 스피킹 능력을 향상시켜 보세요.

쉐도잉이란? 영어 실력을 빠르게 키우는 과학적 방법

쉐도잉(Shadowing)은 원래 전문 통역사 훈련을 위해 개발된 언어 학습 기법으로, 다언어 학자인 Dr. Alexander Arguelles에 의해 대중화된 방법입니다. 핵심 원리는 간단하지만 매우 강력합니다: 원어민의 영어를 들으면서 1~2초의 짧은 지연으로 즉시 소리 내어 따라 말하는 것——마치 '그림자(shadow)'처럼 화자를 따라가는 것입니다. 문법 공부나 수동적인 청취와 달리, 쉐도잉은 뇌와 입 근육이 동시에 실시간으로 영어를 처리하고 재현하도록 훈련합니다. 연구에 따르면 이 방법은 발음 정확도, 억양, 리듬, 연음, 청취력, 말하기 유창성을 크게 향상시킵니다. IELTS 스피킹 준비와 자연스러운 영어 소통을 원하는 분들에게 특히 효과적입니다.