Polonium (Po)
metalloidSolid
표준 원자량
[209]전자 배치
[Xe] 6s2 4f14 5d10 6p4녹는점
253.85 °C끓는점
961.85 °C밀도
9320 kg/m³산화 상태
−2, +2, +4, +5, +6전기 음성도(Pauling)
2제1 이온화 에너지
8.41807 eV발견 연도
1898원자 반지름
190 pm상세 정보
Polonium is a very rare, highly radioactive chalcogen below tellurium in group 16. It occurs naturally only in minute amounts as part of uranium and thorium decay chains, chiefly through isotopes such as ²¹⁰Po. Its chemistry combines metallic character with chalcogen behavior, and its significance comes mainly from intense alpha radioactivity rather than from ordinary materials use.
Polonium-210 is a low-melting, fairly volatile metal, 50% of which is vaporized in air in 45 hours at 55°C. It is an alpha emitter with a half-life of 138.39 days. A milligram emits as many alpha particles as 5 g of radium.
The energy released by its decay is so large (140W/g) that a capsule containing about half a gram reaches a temperature above 500C. The capsule also presents a contact gamma-ray dose rate of 0.012 Gy/h. A few curies (1 curie = 3.7 x 1010Bq) of polonium exhibit a blue glow, caused by excitation of the surrounding gas.
Polonium is readily dissolved in dilute acids, but is only slightly soluble in alkali. Polonium salts of organic acids char rapidly; halide amines are reduced to the metal.
Polonium was discovered by Marie Sklodowska Curie, a Polish chemist, in 1898. She obtained polonium from pitchblende, a material that contains uranium, after noticing that unrefined pitchblende was more radioactive than the uranium that was separated from it. She reasoned that pitchblende must contain at least one other radioactive element. Curie needed to refine several tons of pitchblende in order to obtain tiny amounts of polonium and radium, another radioactive element discovered by Curie. One ton of uranium ore contains only about 100 micrograms (0.0001 grams) of polonium. Due to its scarcity, polonium is usually produced by bombarding bismuth-209 with neutrons in a nuclear reactor. This forms bismuth-210, which has a half-life of 5 days. Bismuth-210 decays into polonium-210 through beta decay. Milligram amounts of polonium-210 have been produced by this method.
Polonium-210 is a very strong emitter of alpha particles. A single gram of polonium-210 creates 140 Watts of heat energy and is being considered as a lightweight heat source for thermoelectric power for spacecraft. Polonium-210 has a half-life of 138.39 days.
Polonium's most stable isotope, polonium-209, has a half-life of 102 years. It decays into lead-205 through alpha decay. Polonium-209 is available from Oak Ridge National Laboratory at the cost of about $3200 per microcurie.
Named after Poland, native country of Madam Curie. Polonium, also called Radium F, was the first element discovered by Curie in 1898 while seeking the cause of radioactivity of pitchblend from Joachimsthal, Bohemia. The electroscope showed it separating with bismuth.
Macroscopic polonium is difficult to handle and observe because it self-heats and rapidly accumulates radiation damage. The pure element is reported as a silvery metal; two solid allotropes are known near ordinary temperatures, including a simple cubic form unusual among elements.
Polonium has no broad commercial use. Historically, ²¹⁰Po was used in static eliminators and neutron sources when mixed with beryllium, where alpha particles drive neutron emission. Such uses have largely been replaced or tightly restricted because of radiological risk and regulatory burden. Small quantities remain relevant for calibration, specialized research, and legacy sealed-source applications.
Polonium can be used to eliminate static electricity in machinery that is caused by processes such as the rolling of paper, wire or sheet metal, although other materials which emit beta particles are more commonly used for this purpose. Polonium is also used in brushes for removing dust from photographic films, although the polonium must be carefully sealed to protect the user from contamination. Polonium is also combined with beryllium to form neutron sources.
Because almost all alpha radiation is stopped within the solid source and its container, giving up its energy, polonium has attracted attention for uses as a lightweight heat source for thermoelectric power in space satellites.
Polonium can be mixed or alloyed with beryllium to provide a source of neutrons. The element has been used in devices for eliminating static charges in textile mills, etc.; however, beta sources are both more commonly used and less dangerous. It is also used on brushes for removing dust from photographic films. The polonium for these is carefully sealed and controlled, minimizing hazards to the user.
Isotopes in Industry
210Po (with a half-life of 138 days) is used as static eliminator to remove static electricity in machinery. This is useful in machinery that produces electricity easily, for example, via rolling paper, manufacturing sheet plastics, and spinning synthetic fibers, which all readily produce static [75] J. Peterson, M. McDonell, L. Haroun, F. Monette, R. D. Hildebrand, A. Taboas. Radiological and Chemical Fact Sheets to Support Health Risk Analyses for Contaminated Areas, Prepared by Argonne National Laboratory Environmental Science Division in collaboration with U.S. Department of Energy, Richland Operations Office and Chicago Operations Office (2014), Feb. 22; http://www.remm.nlm.gov/ANL_ContaminantFactSheets_All_070418.pdf., [563] United States Nuclear Regulatory Commission. Backgrounder on Polonium-210, United States Nuclear Regulatory Commission (2017), April 8; http://www.nrc.gov/reading-rm/doc-collections/fact-sheets/polonium.html.. 210Po can also make use of its static eliminating properties when used in brushes that function to clean camera lenses and photographic films (Fig. IUPAC.84.1) [75] J. Peterson, M. McDonell, L. Haroun, F. Monette, R. D. Hildebrand, A. Taboas. Radiological and Chemical Fact Sheets to Support Health Risk Analyses for Contaminated Areas, Prepared by Argonne National Laboratory Environmental Science Division in collaboration with U.S. Department of Energy, Richland Operations Office and Chicago Operations Office (2014), Feb. 22; http://www.remm.nlm.gov/ANL_ContaminantFactSheets_All_070418.pdf.. 210Po has been used to manufacture atomic weapons. When combined with beryllium, polonium can act as a neutron-producing initiator. However, because of its short half-life, 210Po is no longer used in this manner [75] J. Peterson, M. McDonell, L. Haroun, F. Monette, R. D. Hildebrand, A. Taboas. Radiological and Chemical Fact Sheets to Support Health Risk Analyses for Contaminated Areas, Prepared by Argonne National Laboratory Environmental Science Division in collaboration with U.S. Department of Energy, Richland Operations Office and Chicago Operations Office (2014), Feb. 22; http://www.remm.nlm.gov/ANL_ContaminantFactSheets_All_070418.pdf..
Polonium chemistry is best known for oxidation states −2, +2, +4, and +6, with +4 often prominent in aqueous and halide chemistry. Representative compounds include polonium dioxide, PoO₂, polonium tetrachloride, PoCl₄, and polonium hydride, H₂Po, an unstable hydrogen chalcogenide. Polonides are formed with electropositive metals, but many compounds are hard to study because radiolysis and self-heating alter samples.
See more information at the Polonium compound page.
Polonium is an extreme internal radiological hazard, especially ²¹⁰Po, an alpha emitter. Alpha particles are stopped by skin or thin barriers, but inhaled, ingested, or wound-introduced material can deliver severe localized doses. The element is also chemically toxic, though radiation dominates most risk assessments. Work requires sealed containment, contamination control, and isotope-specific monitoring.
Polonium-210 is very dangerous to handle in even milligram or microgram amounts, and special equipment and strict control is necessary. Damage arises from the complete absorption of the energy of the alpha particle into tissue.
Natural polonium is generated continuously in uranium and thorium decay series and is present at trace levels in rocks, soils, seawater, and the atmosphere. ²¹⁰Po can be transferred through air, water, and food webs, often following particles and sulfur- or selenium-like chemical pathways. It decays rather than persisting indefinitely, but local concentrations can matter in biological and radiological studies.
Polonium is not a traded bulk commodity. Usable ²¹⁰Po is produced in specialized nuclear facilities, commonly by neutron irradiation of bismuth to form ²¹⁰Bi, which decays to ²¹⁰Po, followed by radiochemical separation. Supply is limited by short half-life, licensing, security, and handling costs rather than ore availability. Substitution by less hazardous technologies has sharply reduced routine demand, so production is small and purpose-specific.
Polonium is a very rare natural element. Uranium ores contain only about 100 micrograms of the element per ton. Its abundance is only about 0.2% of that of radium.
In 1934, scientists discovered that when they bombarded natural bismuth (209Bi) with neutrons, 210Bi, the parent of polonium, was obtained. Milligram amounts of polonium may now be prepared this way, by using the high neutron fluxes of nuclear reactors.
Polonium has no stable isotopes, so primordial polonium has long since decayed. In space it is expected only as a transient product of radioactive decay chains or nucleosynthesis pathways involving heavy nuclei. Any detectable amount in planetary materials reflects recent generation from longer-lived actinides, not independent cosmic abundance.
- ²¹⁰Po has a half-life of about 138 days, which strongly limits storage and distribution.
- Polonium was identified by Marie and Pierre Curie in pitchblende residues in 1898.
- The name honored Poland, which was not then an independent state.
- Elemental polonium can become warm from its own alpha-decay heat.
- A polonium-beryllium source produces neutrons without requiring a reactor during use.
- Polonium's simple cubic alpha allotrope is rare among elemental crystal structures.
이미지
특성
물리적 특성
- 원자 반지름(경험값)
- 190 pm 모든 원소의 원자 반지름(경험값) 비교 →
- 공유 결합 반지름
- 140 pm 모든 원소의 공유 결합 반지름 비교 →
- 반데르발스 반지름
- 197 pm 모든 원소의 반데르발스 반지름 비교 →
- 밀도
- 9320 kg/m³ 모든 원소의 밀도 비교 →
- 몰 부피
- 0.0227 L/mol
- STP에서의 상
- 고체 모든 원소의 STP에서의 상 비교 →
- 녹는점
- 253.85 °C 모든 원소의 녹는점 비교 →
- 끓는점
- 961.85 °C 모든 원소의 끓는점 비교 →
- 결정 구조
- 단순 입방 모든 원소의 결정 구조 비교 →
화학적 특성
- 전기 음성도(Pauling)
- 2 모든 원소의 전기 음성도(Pauling) 비교 →
- 전기 음성도(Allen)
- 2.19
- 전자 친화도
- 1.9 eV
- 제1 이온화 에너지
- 8.41807 eV 모든 원소의 제1 이온화 에너지 비교 →
- 제2 이온화 에너지
- 19.300066 eV 모든 원소의 제2 이온화 에너지 비교 →
- 제3 이온화 에너지
- 27.300094 eV 모든 원소의 제3 이온화 에너지 비교 →
- 제4 이온화 에너지
- 36.000124 eV 모든 원소의 제4 이온화 에너지 비교 →
- 제5 이온화 에너지
- 57.000196 eV 모든 원소의 제5 이온화 에너지 비교 →
- 산화 상태
- −2, +2, +4, +5, +6 모든 원소의 산화 상태 비교 →
- 원자가 전자
- 6 모든 원소의 원자가 전자 비교 →
- 전자 배치
- [Xe] 6s2 4f14 5d10 6p4
열역학적 특성
- 융해열
- 0.13473597 eV 모든 원소의 융해열 비교 →
- 기화열
- 1.057159 eV 모든 원소의 기화열 비교 →
- 승화열
- 1.824118 eV
- 원자화열
- 1.824118 eV
핵 특성
- 양성자 수
- 84 모든 원소의 양성자 수 비교 →
- 중성자 수
- 125 모든 원소의 중성자 수 비교 →
- 알려진 동위원소 수
- 42 모든 원소의 알려진 동위원소 수 비교 →
- 안정 동위원소 수
- 0 모든 원소의 안정 동위원소 수 비교 →
- 질량수(가장 안정한 동위원소)
- 209
- 가장 안정한 동위원소
- Po-209
- 발견 연도
- 1898
존재비
- 존재비(지각)
- 2e-10 mg/kg 모든 원소의 존재비(지각) 비교 →
- 존재비(해양)
- 1.5 × 10−14 mg/L 모든 원소의 존재비(해양) 비교 →
결정 구조
- 격자 상수 a
- 335 pm
전자 구조
- 전자껍질별 전자 수
- 2, 8, 18, 32, 18, 6 모든 원소의 전자껍질별 전자 수 비교 →
식별자
- CAS 등록 번호
- 7440-08-6 모든 원소의 CAS 등록 번호 비교 →
- 항 기호
- 3P2
- InChI
- InChI=1S/Po
- InChI 키
- HZEBHPIOVYHPMT-UHFFFAOYSA-N
전자 배치 측정값
Po: 4f¹⁴ 5d¹⁰ 6s² 6p⁴[Xe] 4f¹⁴ 5d¹⁰ 6s² 6p⁴1s² 2s² 2p⁶ 3s² 3p⁶ 3d¹⁰ 4s² 4p⁶ 4d¹⁰ 5s² 5p⁶ 4f¹⁴ 5d¹⁰ 6s² 6p⁴원자 모형
동위원소에 따라 중성자 수, 질량, 안정성은 달라지지만, 중성 원자의 전자 배치는 달라지지 않습니다.
개략적인 원자 모형이며 실제 비율과 다릅니다.
원자 지문
방출 / 흡수 스펙트럼
동위원소 분포
안정 동위원소가 없습니다.
| 질량수 | 원자 질량(u) | 천연 존재비 | 반감기 |
|---|---|---|---|
| 211 방사성 | 210.9866536 ± 0.0000014 | 해당 없음 | 516 ms |
| 193 방사성 | 192.991026 ± 0.000037 | 해당 없음 | 399 ms |
| 194 방사성 | 193.988186 ± 0.000014 | 해당 없음 | 392 ms |
| 212 방사성 | 211.9888684 ± 0.0000013 | 해당 없음 | 294.4 ns |
| 188 방사성 | 187.999416 ± 0.000021 | 해당 없음 | 270 us |
상 / 상태
이유: 녹는점(253.85 °C)보다 228.9 °C 낮음
개략도이며 실제 비율과 다름
상전이점
전이 에너지
녹는점에서 1 mol을 녹이는 데 필요한 에너지
끓는점에서 1 mol을 기화시키는 데 필요한 에너지
승화점에서 1 mol을 승화시키는 데 필요한 에너지
밀도
표준 조건에서
표준 조건에서
원자 스펙트럼
전체 84개 중 10개를 표시합니다. 이온 전하순으로 정렬되었습니다(오름차순).
보유 에너지 준위 데이터 ?
| 이온 | 전하 | 준위 |
|---|---|---|
| Po I | 0 | 33 |
| Po II | +1 | 2 |
| Po III | +2 | 2 |
| Po IV | +3 | 2 |
| Po V | +4 | 2 |
| Po VI | +5 | 2 |
| Po VII | +6 | 2 |
| Po VIII | +7 | 2 |
| Po IX | +8 | 2 |
| Po X | +9 | 2 |
이온 반지름
| 전하 | 배위 | 스핀 | 반지름 |
|---|---|---|---|
| +4 | 6 | 해당 없음 | 94 pm |
| +4 | 8 | 해당 없음 | 108 pm |
| +6 | 6 | 해당 없음 | 67 pm |
화합물
동위원소 (5)
Twenty five isotopes of polonium are known, with atomic masses ranging from 194 to 218. Polonium-210 is the most readily available. Isotopes of mass 209 (half-life 103 years) and mass 208 (half-life 2.9 years) can be prepared by alpha, proton, or deuteron bombardment of lead or bismuth in a cyclotron, but these are expensive to produce.
| 질량수 | 원자 질량(u) | 천연 존재비 | 반감기 | 붕괴 방식 | |
|---|---|---|---|---|---|
| 211 방사성 | 210.9866536 ± 0.0000014 | 해당 없음 | 516 ms | α =100% | |
| 193 방사성 | 192.991026 ± 0.000037 | 해당 없음 | 399 ms | α ≈100%β+ ? | |
| 194 방사성 | 193.988186 ± 0.000014 | 해당 없음 | 392 ms | α ≈100%β+ ? | |
| 212 방사성 | 211.9888684 ± 0.0000013 | 해당 없음 | 294.4 ns | α =100% | |
| 188 방사성 | 187.999416 ± 0.000021 | 해당 없음 | 270 us | α ≈100%β+ ? |
확장 특성
공유 결합 반지름(확장)
- 공유 결합 반지름(Pyykkö)
- 145 pm
- 공유 결합 반지름(Pyykkö, 이중 결합)
- 135 pm
- 공유 결합 반지름(Pyykkö, 삼중 결합)
- 129 pm
반데르발스 반지름
- Truhlar
- 197 pm
- UFF
- 470.9 pm
- MM3
- 259 pm
원자 및 금속 반지름
- 원자 반지름(Rahm)
- 250 pm
번호 척도
- Mendeleev
- 103
- Pettifor
- 91
- Glawe
- 93
전기 음성도 척도
- Ghosh
- 0
- Gunnarsson–Lundqvist
- 6
- Robles–Bartolotti
- 4
분극률 및 분산
- 쌍극자 분극률
- 44 a.u.
- 쌍극자 분극률(불확도)
- 4 a.u.
- C₆ (Gould–Bučko)
- 424 Ha·Bohr6
상전이 및 동소체
| 녹는점 | 527.15 K |
| 끓는점 | 1235.15 K |
산화 상태 분류
심화 참고 데이터
차폐 상수 (15)
| n | 오비탈 | σ |
|---|---|---|
| 1 | s | 1.6232 |
| 2 | p | 4.5428 |
| 2 | s | 22.0782 |
| 3 | d | 13.428 |
| 3 | p | 23.2851 |
| 3 | s | 24.3813 |
| 4 | d | 36.3328 |
| 4 | f | 37.8416 |
| 4 | p | 36.3328 |
| 4 | s | 35.4784 |
결정 반지름 상세 정보 (3)
| 전하 | CN | 스핀 | rcrystal (pm) | 기원 |
|---|---|---|---|---|
| 4 | VI | 108 | from r^3 vs V plots, | |
| 4 | VIII | 122 | from r^3 vs V plots, | |
| 6 | VI | 81 | Ahrens (1952) ionic radius, |
동위원소 붕괴 방식 (71)
| 동위원소 | 모드 | 세기 |
|---|---|---|
| 186 | A | 100% |
| 186 | p | — |
| 187 | A | 100% |
| 187 | B+ | — |
| 188 | A | 100% |
| 188 | B+ | — |
| 189 | A | 100% |
| 189 | B+ | — |
| 190 | A | 100% |
| 190 | B+ | — |
X선 산란 인자 (516)
| 에너지 (eV) | f₁ | f₂ |
|---|---|---|
| 10 | — | 4.92763 |
| 10.1617 | — | 4.95784 |
| 10.3261 | — | 4.98823 |
| 10.4931 | — | 5.01881 |
| 10.6628 | — | 5.04957 |
| 10.8353 | — | 5.10634 |
| 11.0106 | — | 5.17368 |
| 11.1886 | — | 5.24191 |
| 11.3696 | — | 5.31104 |
| 11.5535 | — | 5.38108 |
추가 데이터
Estimated Crustal Abundance
The estimated element abundance in the earth's crust.
2×10-10 milligrams per kilogram
참고 문헌 (1)
- [5] Polonium https://education.jlab.org/itselemental/ele084.html
Estimated Oceanic Abundance
The estimated element abundance in the earth's oceans.
1.5×10-14 milligrams per liter
참고 문헌 (1)
- [5] Polonium https://education.jlab.org/itselemental/ele084.html
Sources
Sources of this element.
Polonium is a very rare natural element. Uranium ores contain only about 100 micrograms of the element per ton. Its abundance is only about 0.2% of that of radium.
In 1934, scientists discovered that when they bombarded natural bismuth (209Bi) with neutrons, 210Bi, the parent of polonium, was obtained. Milligram amounts of polonium may now be prepared this way, by using the high neutron fluxes of nuclear reactors.
참고 문헌 (1)
- [6] Polonium https://periodic.lanl.gov/84.shtml
참고 문헌
(9)
Data deposited in or computed by PubChem
The half-life and atomic mass data was provided by the Atomic Mass Data Center at the International Atomic Energy Agency.
Element data are cited from the Atomic weights of the elements (an IUPAC Technical Report). The IUPAC periodic table of elements can be found at https://iupac.org/what-we-do/periodic-table-of-elements/. Additional information can be found within IUPAC publication doi:10.1515/pac-2015-0703 Copyright © 2020 International Union of Pure and Applied Chemistry.
The information are cited from Pure Appl. Chem. 2018; 90(12): 1833-2092, https://doi.org/10.1515/pac-2015-0703.
Thomas Jefferson National Accelerator Facility (Jefferson Lab) is one of 17 national laboratories funded by the U.S. Department of Energy. The lab's primary mission is to conduct basic research of the atom's nucleus using the lab's unique particle accelerator, known as the Continuous Electron Beam Accelerator Facility (CEBAF). For more information visit https://www.jlab.org/
The periodic table at the LANL (Los Alamos National Laboratory) contains basic element information together with the history, source, properties, use, handling and more. The provenance data may be found from the link under the source name.
The periodic table contains NIST's critically-evaluated data on atomic properties of the elements. The provenance data that include data for atomic spectroscopy, X-ray and gamma ray, radiation dosimetry, nuclear physics, and condensed matter physics may be found from the link under the source name. Ref: https://www.nist.gov/pml/atomic-spectra-database
This section provides all form of data related to element Polonium.
The element property data was retrieved from publications.

